FlatCAMGrbEditor.py 246 KB

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  1. # ##########################################################
  2. # FlatCAM: 2D Post-processing for Manufacturing #
  3. # File Author: Marius Adrian Stanciu (c) #
  4. # Date: 8/17/2019 #
  5. # MIT Licence #
  6. # ##########################################################
  7. from PyQt5 import QtGui, QtCore, QtWidgets
  8. from PyQt5.QtCore import Qt, QSettings
  9. from shapely.geometry import LineString, LinearRing, MultiLineString, Point, Polygon, MultiPolygon
  10. from shapely.ops import cascaded_union
  11. import shapely.affinity as affinity
  12. import threading
  13. import time
  14. from copy import copy, deepcopy
  15. import logging
  16. from camlib import distance, arc, three_point_circle
  17. from flatcamGUI.GUIElements import FCEntry, FCComboBox, FCTable, FCDoubleSpinner, FCSpinner, RadioSet, \
  18. EvalEntry2, FCInputDialog, FCButton, OptionalInputSection, FCCheckBox
  19. from FlatCAMTool import FlatCAMTool
  20. import FlatCAMApp
  21. import numpy as np
  22. from numpy.linalg import norm as numpy_norm
  23. import math
  24. # from vispy.io import read_png
  25. # import pngcanvas
  26. import traceback
  27. import gettext
  28. import FlatCAMTranslation as fcTranslate
  29. import builtins
  30. fcTranslate.apply_language('strings')
  31. if '_' not in builtins.__dict__:
  32. _ = gettext.gettext
  33. log = logging.getLogger('base')
  34. class DrawToolShape(object):
  35. """
  36. Encapsulates "shapes" under a common class.
  37. """
  38. tolerance = None
  39. @staticmethod
  40. def get_pts(o):
  41. """
  42. Returns a list of all points in the object, where
  43. the object can be a Polygon, Not a polygon, or a list
  44. of such. Search is done recursively.
  45. :param: geometric object
  46. :return: List of points
  47. :rtype: list
  48. """
  49. pts = []
  50. # ## Iterable: descend into each item.
  51. try:
  52. for sub_o in o:
  53. pts += DrawToolShape.get_pts(sub_o)
  54. # Non-iterable
  55. except TypeError:
  56. if o is not None:
  57. # DrawToolShape: descend into .geo.
  58. if isinstance(o, DrawToolShape):
  59. pts += DrawToolShape.get_pts(o.geo)
  60. # ## Descend into .exerior and .interiors
  61. elif type(o) == Polygon:
  62. pts += DrawToolShape.get_pts(o.exterior)
  63. for i in o.interiors:
  64. pts += DrawToolShape.get_pts(i)
  65. elif type(o) == MultiLineString:
  66. for line in o:
  67. pts += DrawToolShape.get_pts(line)
  68. # ## Has .coords: list them.
  69. else:
  70. if DrawToolShape.tolerance is not None:
  71. pts += list(o.simplify(DrawToolShape.tolerance).coords)
  72. else:
  73. pts += list(o.coords)
  74. else:
  75. return
  76. return pts
  77. def __init__(self, geo=None):
  78. # Shapely type or list of such
  79. self.geo = geo
  80. self.utility = False
  81. class DrawToolUtilityShape(DrawToolShape):
  82. """
  83. Utility shapes are temporary geometry in the editor
  84. to assist in the creation of shapes. For example it
  85. will show the outline of a rectangle from the first
  86. point to the current mouse pointer before the second
  87. point is clicked and the final geometry is created.
  88. """
  89. def __init__(self, geo=None):
  90. super(DrawToolUtilityShape, self).__init__(geo=geo)
  91. self.utility = True
  92. class DrawTool(object):
  93. """
  94. Abstract Class representing a tool in the drawing
  95. program. Can generate geometry, including temporary
  96. utility geometry that is updated on user clicks
  97. and mouse motion.
  98. """
  99. def __init__(self, draw_app):
  100. self.draw_app = draw_app
  101. self.complete = False
  102. self.points = []
  103. self.geometry = None # DrawToolShape or None
  104. def click(self, point):
  105. """
  106. :param point: [x, y] Coordinate pair.
  107. """
  108. return ""
  109. def click_release(self, point):
  110. """
  111. :param point: [x, y] Coordinate pair.
  112. """
  113. return ""
  114. def on_key(self, key):
  115. return None
  116. def utility_geometry(self, data=None):
  117. return None
  118. @staticmethod
  119. def bounds(obj):
  120. def bounds_rec(o):
  121. if type(o) is list:
  122. minx = np.Inf
  123. miny = np.Inf
  124. maxx = -np.Inf
  125. maxy = -np.Inf
  126. for k in o:
  127. try:
  128. minx_, miny_, maxx_, maxy_ = bounds_rec(k)
  129. except Exception as e:
  130. log.debug("camlib.Gerber.bounds() --> %s" % str(e))
  131. return
  132. minx = min(minx, minx_)
  133. miny = min(miny, miny_)
  134. maxx = max(maxx, maxx_)
  135. maxy = max(maxy, maxy_)
  136. return minx, miny, maxx, maxy
  137. else:
  138. # it's a Shapely object, return it's bounds
  139. if 'solid' in o.geo:
  140. return o.geo['solid'].bounds
  141. return bounds_rec(obj)
  142. class FCShapeTool(DrawTool):
  143. """
  144. Abstract class for tools that create a shape.
  145. """
  146. def __init__(self, draw_app):
  147. DrawTool.__init__(self, draw_app)
  148. def make(self):
  149. pass
  150. class FCPad(FCShapeTool):
  151. """
  152. Resulting type: Polygon
  153. """
  154. def __init__(self, draw_app):
  155. DrawTool.__init__(self, draw_app)
  156. self.name = 'pad'
  157. self.draw_app = draw_app
  158. try:
  159. QtGui.QGuiApplication.restoreOverrideCursor()
  160. except Exception as e:
  161. pass
  162. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_circle.png'))
  163. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  164. try:
  165. self.radius = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['size']) / 2
  166. except KeyError:
  167. self.draw_app.app.inform.emit('[WARNING_NOTCL] %s' %
  168. _("To add an Pad first select a aperture in Aperture Table"))
  169. self.draw_app.in_action = False
  170. self.complete = True
  171. return
  172. if self.radius == 0:
  173. self.draw_app.app.inform.emit('[WARNING_NOTCL] %s' %
  174. _("Aperture size is zero. It needs to be greater than zero."))
  175. self.dont_execute = True
  176. return
  177. else:
  178. self.dont_execute = False
  179. self.storage_obj = self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['geometry']
  180. self.steps_per_circ = self.draw_app.app.defaults["geometry_circle_steps"]
  181. # if those cause KeyError exception it means that the aperture type is not 'R'. Only 'R' type has those keys
  182. try:
  183. self.half_width = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['width']) / 2
  184. except KeyError:
  185. pass
  186. try:
  187. self.half_height = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['height']) / 2
  188. except KeyError:
  189. pass
  190. geo = self.utility_geometry(data=(self.draw_app.snap_x, self.draw_app.snap_y))
  191. if isinstance(geo, DrawToolShape) and geo.geo is not None:
  192. self.draw_app.draw_utility_geometry(geo=geo)
  193. self.draw_app.app.inform.emit(_("Click to place ..."))
  194. # Switch notebook to Selected page
  195. self.draw_app.app.ui.notebook.setCurrentWidget(self.draw_app.app.ui.selected_tab)
  196. self.start_msg = _("Click to place ...")
  197. def click(self, point):
  198. self.make()
  199. return "Done."
  200. def utility_geometry(self, data=None):
  201. if self.dont_execute is True:
  202. self.draw_app.select_tool('select')
  203. return
  204. self.points = data
  205. geo_data = self.util_shape(data)
  206. if geo_data:
  207. return DrawToolUtilityShape(geo_data)
  208. else:
  209. return None
  210. def util_shape(self, point):
  211. # updating values here allows us to change the aperture on the fly, after the Tool has been started
  212. self.storage_obj = self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['geometry']
  213. self.radius = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['size']) / 2
  214. self.steps_per_circ = self.draw_app.app.defaults["geometry_circle_steps"]
  215. # if those cause KeyError exception it means that the aperture type is not 'R'. Only 'R' type has those keys
  216. try:
  217. self.half_width = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['width']) / 2
  218. except KeyError:
  219. pass
  220. try:
  221. self.half_height = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['height']) / 2
  222. except KeyError:
  223. pass
  224. if point[0] is None and point[1] is None:
  225. point_x = self.draw_app.x
  226. point_y = self.draw_app.y
  227. else:
  228. point_x = point[0]
  229. point_y = point[1]
  230. ap_type = self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['type']
  231. if ap_type == 'C':
  232. new_geo_el = dict()
  233. center = Point([point_x, point_y])
  234. new_geo_el['solid'] = center.buffer(self.radius)
  235. new_geo_el['follow'] = center
  236. return new_geo_el
  237. elif ap_type == 'R':
  238. new_geo_el = dict()
  239. p1 = (point_x - self.half_width, point_y - self.half_height)
  240. p2 = (point_x + self.half_width, point_y - self.half_height)
  241. p3 = (point_x + self.half_width, point_y + self.half_height)
  242. p4 = (point_x - self.half_width, point_y + self.half_height)
  243. center = Point([point_x, point_y])
  244. new_geo_el['solid'] = Polygon([p1, p2, p3, p4, p1])
  245. new_geo_el['follow'] = center
  246. return new_geo_el
  247. elif ap_type == 'O':
  248. geo = []
  249. new_geo_el = dict()
  250. if self.half_height > self.half_width:
  251. p1 = (point_x - self.half_width, point_y - self.half_height + self.half_width)
  252. p2 = (point_x + self.half_width, point_y - self.half_height + self.half_width)
  253. p3 = (point_x + self.half_width, point_y + self.half_height - self.half_width)
  254. p4 = (point_x - self.half_width, point_y + self.half_height - self.half_width)
  255. down_center = [point_x, point_y - self.half_height + self.half_width]
  256. d_start_angle = np.pi
  257. d_stop_angle = 0.0
  258. down_arc = arc(down_center, self.half_width, d_start_angle, d_stop_angle, 'ccw', self.steps_per_circ)
  259. up_center = [point_x, point_y + self.half_height - self.half_width]
  260. u_start_angle = 0.0
  261. u_stop_angle = np.pi
  262. up_arc = arc(up_center, self.half_width, u_start_angle, u_stop_angle, 'ccw', self.steps_per_circ)
  263. geo.append(p1)
  264. for pt in down_arc:
  265. geo.append(pt)
  266. geo.append(p2)
  267. geo.append(p3)
  268. for pt in up_arc:
  269. geo.append(pt)
  270. geo.append(p4)
  271. new_geo_el['solid'] = Polygon(geo)
  272. center = Point([point_x, point_y])
  273. new_geo_el['follow'] = center
  274. return new_geo_el
  275. else:
  276. p1 = (point_x - self.half_width + self.half_height, point_y - self.half_height)
  277. p2 = (point_x + self.half_width - self.half_height, point_y - self.half_height)
  278. p3 = (point_x + self.half_width - self.half_height, point_y + self.half_height)
  279. p4 = (point_x - self.half_width + self.half_height, point_y + self.half_height)
  280. left_center = [point_x - self.half_width + self.half_height, point_y]
  281. d_start_angle = np.pi / 2
  282. d_stop_angle = 1.5 * np.pi
  283. left_arc = arc(left_center, self.half_height, d_start_angle, d_stop_angle, 'ccw', self.steps_per_circ)
  284. right_center = [point_x + self.half_width - self.half_height, point_y]
  285. u_start_angle = 1.5 * np.pi
  286. u_stop_angle = np.pi / 2
  287. right_arc = arc(right_center, self.half_height, u_start_angle, u_stop_angle, 'ccw', self.steps_per_circ)
  288. geo.append(p1)
  289. geo.append(p2)
  290. for pt in right_arc:
  291. geo.append(pt)
  292. geo.append(p3)
  293. geo.append(p4)
  294. for pt in left_arc:
  295. geo.append(pt)
  296. new_geo_el['solid'] = Polygon(geo)
  297. center = Point([point_x, point_y])
  298. new_geo_el['follow'] = center
  299. return new_geo_el
  300. else:
  301. self.draw_app.app.inform.emit(_(
  302. "Incompatible aperture type. Select an aperture with type 'C', 'R' or 'O'."))
  303. return None
  304. def make(self):
  305. self.draw_app.current_storage = self.storage_obj
  306. try:
  307. self.geometry = DrawToolShape(self.util_shape(self.points))
  308. except Exception as e:
  309. log.debug("FCPad.make() --> %s" % str(e))
  310. self.draw_app.in_action = False
  311. self.complete = True
  312. self.draw_app.app.inform.emit('[success] %s' %
  313. _("Done. Adding Pad completed."))
  314. def clean_up(self):
  315. self.draw_app.selected = []
  316. self.draw_app.apertures_table.clearSelection()
  317. self.draw_app.plot_all()
  318. class FCPadArray(FCShapeTool):
  319. """
  320. Resulting type: MultiPolygon
  321. """
  322. def __init__(self, draw_app):
  323. DrawTool.__init__(self, draw_app)
  324. self.name = 'array'
  325. self.draw_app = draw_app
  326. try:
  327. self.radius = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['size']) / 2
  328. except KeyError:
  329. self.draw_app.app.inform.emit('[WARNING_NOTCL] %s' %
  330. _("To add an Pad Array first select a aperture in Aperture Table"))
  331. self.complete = True
  332. self.draw_app.in_action = False
  333. self.draw_app.array_frame.hide()
  334. return
  335. if self.radius == 0:
  336. self.draw_app.app.inform.emit('[WARNING_NOTCL] %s' %
  337. _("Aperture size is zero. It needs to be greater than zero."))
  338. self.dont_execute = True
  339. return
  340. else:
  341. self.dont_execute = False
  342. try:
  343. QtGui.QGuiApplication.restoreOverrideCursor()
  344. except Exception as e:
  345. pass
  346. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_array.png'))
  347. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  348. self.storage_obj = self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['geometry']
  349. self.steps_per_circ = self.draw_app.app.defaults["geometry_circle_steps"]
  350. # if those cause KeyError exception it means that the aperture type is not 'R'. Only 'R' type has those keys
  351. try:
  352. self.half_width = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['width']) / 2
  353. except KeyError:
  354. pass
  355. try:
  356. self.half_height = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['height']) / 2
  357. except KeyError:
  358. pass
  359. self.draw_app.array_frame.show()
  360. self.selected_size = None
  361. self.pad_axis = 'X'
  362. self.pad_array = 'linear'
  363. self.pad_array_size = None
  364. self.pad_pitch = None
  365. self.pad_linear_angle = None
  366. self.pad_angle = None
  367. self.pad_direction = None
  368. self.pad_radius = None
  369. self.origin = None
  370. self.destination = None
  371. self.flag_for_circ_array = None
  372. self.last_dx = 0
  373. self.last_dy = 0
  374. self.pt = []
  375. geo = self.utility_geometry(data=(self.draw_app.snap_x, self.draw_app.snap_y), static=True)
  376. if isinstance(geo, DrawToolShape) and geo.geo is not None:
  377. self.draw_app.draw_utility_geometry(geo=geo)
  378. self.draw_app.app.inform.emit(_("Click on target location ..."))
  379. # Switch notebook to Selected page
  380. self.draw_app.app.ui.notebook.setCurrentWidget(self.draw_app.app.ui.selected_tab)
  381. def click(self, point):
  382. if self.pad_array == 'Linear':
  383. self.make()
  384. return
  385. else:
  386. if self.flag_for_circ_array is None:
  387. self.draw_app.in_action = True
  388. self.pt.append(point)
  389. self.flag_for_circ_array = True
  390. self.set_origin(point)
  391. self.draw_app.app.inform.emit(_("Click on the Pad Circular Array Start position"))
  392. else:
  393. self.destination = point
  394. self.make()
  395. self.flag_for_circ_array = None
  396. return
  397. def set_origin(self, origin):
  398. self.origin = origin
  399. def utility_geometry(self, data=None, static=None):
  400. if self.dont_execute is True:
  401. self.draw_app.select_tool('select')
  402. return
  403. self.pad_axis = self.draw_app.pad_axis_radio.get_value()
  404. self.pad_direction = self.draw_app.pad_direction_radio.get_value()
  405. self.pad_array = self.draw_app.array_type_combo.get_value()
  406. try:
  407. self.pad_array_size = int(self.draw_app.pad_array_size_entry.get_value())
  408. try:
  409. self.pad_pitch = float(self.draw_app.pad_pitch_entry.get_value())
  410. self.pad_linear_angle = float(self.draw_app.linear_angle_spinner.get_value())
  411. self.pad_angle = float(self.draw_app.pad_angle_entry.get_value())
  412. except TypeError:
  413. self.draw_app.app.inform.emit('[ERROR_NOTCL] %s' %
  414. _("The value is not Float. Check for comma instead of dot separator."))
  415. return
  416. except Exception as e:
  417. self.draw_app.app.inform.emit('[ERROR_NOTCL] %s' %
  418. _("The value is mistyped. Check the value."))
  419. return
  420. if self.pad_array == 'Linear':
  421. if data[0] is None and data[1] is None:
  422. dx = self.draw_app.x
  423. dy = self.draw_app.y
  424. else:
  425. dx = data[0]
  426. dy = data[1]
  427. geo_el_list = []
  428. geo_el = []
  429. self.points = [dx, dy]
  430. for item in range(self.pad_array_size):
  431. if self.pad_axis == 'X':
  432. geo_el = self.util_shape(((dx + (self.pad_pitch * item)), dy))
  433. if self.pad_axis == 'Y':
  434. geo_el = self.util_shape((dx, (dy + (self.pad_pitch * item))))
  435. if self.pad_axis == 'A':
  436. x_adj = self.pad_pitch * math.cos(math.radians(self.pad_linear_angle))
  437. y_adj = self.pad_pitch * math.sin(math.radians(self.pad_linear_angle))
  438. geo_el = self.util_shape(
  439. ((dx + (x_adj * item)), (dy + (y_adj * item)))
  440. )
  441. if static is None or static is False:
  442. new_geo_el = dict()
  443. if 'solid' in geo_el:
  444. new_geo_el['solid'] = affinity.translate(
  445. geo_el['solid'], xoff=(dx - self.last_dx), yoff=(dy - self.last_dy)
  446. )
  447. if 'follow' in geo_el:
  448. new_geo_el['follow'] = affinity.translate(
  449. geo_el['follow'], xoff=(dx - self.last_dx), yoff=(dy - self.last_dy)
  450. )
  451. geo_el_list.append(new_geo_el)
  452. else:
  453. geo_el_list.append(geo_el)
  454. # self.origin = data
  455. self.last_dx = dx
  456. self.last_dy = dy
  457. return DrawToolUtilityShape(geo_el_list)
  458. else:
  459. if data[0] is None and data[1] is None:
  460. cdx = self.draw_app.x
  461. cdy = self.draw_app.y
  462. else:
  463. cdx = data[0]
  464. cdy = data[1]
  465. if len(self.pt) > 0:
  466. temp_points = [x for x in self.pt]
  467. temp_points.append([cdx, cdy])
  468. return DrawToolUtilityShape(LineString(temp_points))
  469. def util_shape(self, point):
  470. # updating values here allows us to change the aperture on the fly, after the Tool has been started
  471. self.storage_obj = self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['geometry']
  472. self.radius = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['size']) / 2
  473. self.steps_per_circ = self.draw_app.app.defaults["geometry_circle_steps"]
  474. # if those cause KeyError exception it means that the aperture type is not 'R'. Only 'R' type has those keys
  475. try:
  476. self.half_width = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['width']) / 2
  477. except KeyError:
  478. pass
  479. try:
  480. self.half_height = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['height']) / 2
  481. except KeyError:
  482. pass
  483. if point[0] is None and point[1] is None:
  484. point_x = self.draw_app.x
  485. point_y = self.draw_app.y
  486. else:
  487. point_x = point[0]
  488. point_y = point[1]
  489. ap_type = self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['type']
  490. if ap_type == 'C':
  491. new_geo_el = dict()
  492. center = Point([point_x, point_y])
  493. new_geo_el['solid'] = center.buffer(self.radius)
  494. new_geo_el['follow'] = center
  495. return new_geo_el
  496. elif ap_type == 'R':
  497. new_geo_el = dict()
  498. p1 = (point_x - self.half_width, point_y - self.half_height)
  499. p2 = (point_x + self.half_width, point_y - self.half_height)
  500. p3 = (point_x + self.half_width, point_y + self.half_height)
  501. p4 = (point_x - self.half_width, point_y + self.half_height)
  502. new_geo_el['solid'] = Polygon([p1, p2, p3, p4, p1])
  503. new_geo_el['follow'] = Point([point_x, point_y])
  504. return new_geo_el
  505. elif ap_type == 'O':
  506. geo = []
  507. new_geo_el = dict()
  508. if self.half_height > self.half_width:
  509. p1 = (point_x - self.half_width, point_y - self.half_height + self.half_width)
  510. p2 = (point_x + self.half_width, point_y - self.half_height + self.half_width)
  511. p3 = (point_x + self.half_width, point_y + self.half_height - self.half_width)
  512. p4 = (point_x - self.half_width, point_y + self.half_height - self.half_width)
  513. down_center = [point_x, point_y - self.half_height + self.half_width]
  514. d_start_angle = np.pi
  515. d_stop_angle = 0.0
  516. down_arc = arc(down_center, self.half_width, d_start_angle, d_stop_angle, 'ccw', self.steps_per_circ)
  517. up_center = [point_x, point_y + self.half_height - self.half_width]
  518. u_start_angle = 0.0
  519. u_stop_angle = np.pi
  520. up_arc = arc(up_center, self.half_width, u_start_angle, u_stop_angle, 'ccw', self.steps_per_circ)
  521. geo.append(p1)
  522. for pt in down_arc:
  523. geo.append(pt)
  524. geo.append(p2)
  525. geo.append(p3)
  526. for pt in up_arc:
  527. geo.append(pt)
  528. geo.append(p4)
  529. new_geo_el['solid'] = Polygon(geo)
  530. center = Point([point_x, point_y])
  531. new_geo_el['follow'] = center
  532. return new_geo_el
  533. else:
  534. p1 = (point_x - self.half_width + self.half_height, point_y - self.half_height)
  535. p2 = (point_x + self.half_width - self.half_height, point_y - self.half_height)
  536. p3 = (point_x + self.half_width - self.half_height, point_y + self.half_height)
  537. p4 = (point_x - self.half_width + self.half_height, point_y + self.half_height)
  538. left_center = [point_x - self.half_width + self.half_height, point_y]
  539. d_start_angle = np.pi / 2
  540. d_stop_angle = 1.5 * np.pi
  541. left_arc = arc(left_center, self.half_height, d_start_angle, d_stop_angle, 'ccw', self.steps_per_circ)
  542. right_center = [point_x + self.half_width - self.half_height, point_y]
  543. u_start_angle = 1.5 * np.pi
  544. u_stop_angle = np.pi / 2
  545. right_arc = arc(right_center, self.half_height, u_start_angle, u_stop_angle, 'ccw', self.steps_per_circ)
  546. geo.append(p1)
  547. geo.append(p2)
  548. for pt in right_arc:
  549. geo.append(pt)
  550. geo.append(p3)
  551. geo.append(p4)
  552. for pt in left_arc:
  553. geo.append(pt)
  554. new_geo_el['solid'] = Polygon(geo)
  555. center = Point([point_x, point_y])
  556. new_geo_el['follow'] = center
  557. return new_geo_el
  558. else:
  559. self.draw_app.app.inform.emit(_(
  560. "Incompatible aperture type. Select an aperture with type 'C', 'R' or 'O'."))
  561. return None
  562. def make(self):
  563. self.geometry = []
  564. geo = None
  565. self.draw_app.current_storage = self.storage_obj
  566. if self.pad_array == 'Linear':
  567. for item in range(self.pad_array_size):
  568. if self.pad_axis == 'X':
  569. geo = self.util_shape(((self.points[0] + (self.pad_pitch * item)), self.points[1]))
  570. if self.pad_axis == 'Y':
  571. geo = self.util_shape((self.points[0], (self.points[1] + (self.pad_pitch * item))))
  572. if self.pad_axis == 'A':
  573. x_adj = self.pad_pitch * math.cos(math.radians(self.pad_linear_angle))
  574. y_adj = self.pad_pitch * math.sin(math.radians(self.pad_linear_angle))
  575. geo = self.util_shape(
  576. ((self.points[0] + (x_adj * item)), (self.points[1] + (y_adj * item)))
  577. )
  578. self.geometry.append(DrawToolShape(geo))
  579. else:
  580. if (self.pad_angle * self.pad_array_size) > 360:
  581. self.draw_app.app.inform.emit('[WARNING_NOTCL] %s' %
  582. _("Too many Pads for the selected spacing angle."))
  583. return
  584. radius = distance(self.destination, self.origin)
  585. initial_angle = math.asin((self.destination[1] - self.origin[1]) / radius)
  586. for i in range(self.pad_array_size):
  587. angle_radians = math.radians(self.pad_angle * i)
  588. if self.pad_direction == 'CW':
  589. x = self.origin[0] + radius * math.cos(-angle_radians + initial_angle)
  590. y = self.origin[1] + radius * math.sin(-angle_radians + initial_angle)
  591. else:
  592. x = self.origin[0] + radius * math.cos(angle_radians + initial_angle)
  593. y = self.origin[1] + radius * math.sin(angle_radians + initial_angle)
  594. geo = self.util_shape((x, y))
  595. if self.pad_direction == 'CW':
  596. geo = affinity.rotate(geo, angle=(math.pi - angle_radians), use_radians=True)
  597. else:
  598. geo = affinity.rotate(geo, angle=(angle_radians - math.pi), use_radians=True)
  599. self.geometry.append(DrawToolShape(geo))
  600. self.complete = True
  601. self.draw_app.app.inform.emit('[success] %s' %
  602. _("Done. Pad Array added."))
  603. self.draw_app.in_action = False
  604. self.draw_app.array_frame.hide()
  605. return
  606. def clean_up(self):
  607. self.draw_app.selected = []
  608. self.draw_app.apertures_table.clearSelection()
  609. self.draw_app.plot_all()
  610. class FCPoligonize(FCShapeTool):
  611. """
  612. Resulting type: Polygon
  613. """
  614. def __init__(self, draw_app):
  615. DrawTool.__init__(self, draw_app)
  616. self.name = 'poligonize'
  617. self.draw_app = draw_app
  618. self.draw_app.app.inform.emit(_("Select shape(s) and then click ..."))
  619. self.draw_app.in_action = True
  620. self.make()
  621. def click(self, point):
  622. return ""
  623. def make(self):
  624. if not self.draw_app.selected:
  625. self.draw_app.in_action = False
  626. self.complete = True
  627. self.draw_app.app.inform.emit('[ERROR_NOTCL] %s' %
  628. _("Failed. Nothing selected."))
  629. self.draw_app.select_tool("select")
  630. return
  631. apid_set = set()
  632. for elem in self.draw_app.selected:
  633. for apid in self.draw_app.storage_dict:
  634. if 'geometry' in self.draw_app.storage_dict[apid]:
  635. if elem in self.draw_app.storage_dict[apid]['geometry']:
  636. apid_set.add(apid)
  637. break
  638. if len(apid_set) > 1:
  639. self.draw_app.in_action = False
  640. self.complete = True
  641. self.draw_app.app.inform.emit('[WARNING_NOTCL] %s' %
  642. _("Failed. Poligonize works only on geometries belonging "
  643. "to the same aperture."))
  644. self.draw_app.select_tool("select")
  645. return
  646. # exterior_geo = [Polygon(sh.geo.exterior) for sh in self.draw_app.selected]
  647. exterior_geo = []
  648. for geo_shape in self.draw_app.selected:
  649. geometric_data = geo_shape.geo
  650. if 'solid' in geometric_data:
  651. exterior_geo.append(Polygon(geometric_data['solid'].exterior))
  652. fused_geo = MultiPolygon(exterior_geo)
  653. fused_geo = fused_geo.buffer(0.0000001)
  654. current_storage = self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['geometry']
  655. if isinstance(fused_geo, MultiPolygon):
  656. for geo in fused_geo:
  657. # clean-up the geo
  658. geo = geo.buffer(0)
  659. if len(geo.interiors) == 0:
  660. try:
  661. current_storage = self.draw_app.storage_dict['0']['geometry']
  662. except KeyError:
  663. self.draw_app.on_aperture_add(apid='0')
  664. current_storage = self.draw_app.storage_dict['0']['geometry']
  665. new_el = dict()
  666. new_el['solid'] = geo
  667. new_el['follow'] = geo.exterior
  668. self.draw_app.on_grb_shape_complete(current_storage, specific_shape=DrawToolShape(deepcopy(new_el)))
  669. else:
  670. # clean-up the geo
  671. fused_geo = fused_geo.buffer(0)
  672. if len(fused_geo.interiors) == 0 and len(exterior_geo) == 1:
  673. try:
  674. current_storage = self.draw_app.storage_dict['0']['geometry']
  675. except KeyError:
  676. self.draw_app.on_aperture_add(apid='0')
  677. current_storage = self.draw_app.storage_dict['0']['geometry']
  678. new_el = dict()
  679. new_el['solid'] = fused_geo
  680. new_el['follow'] = fused_geo.exterior
  681. self.draw_app.on_grb_shape_complete(current_storage, specific_shape=DrawToolShape(deepcopy(new_el)))
  682. self.draw_app.delete_selected()
  683. self.draw_app.plot_all()
  684. self.draw_app.in_action = False
  685. self.complete = True
  686. self.draw_app.app.inform.emit('[success] %s' %
  687. _("Done. Poligonize completed."))
  688. # MS: always return to the Select Tool if modifier key is not pressed
  689. # else return to the current tool
  690. key_modifier = QtWidgets.QApplication.keyboardModifiers()
  691. if self.draw_app.app.defaults["global_mselect_key"] == 'Control':
  692. modifier_to_use = Qt.ControlModifier
  693. else:
  694. modifier_to_use = Qt.ShiftModifier
  695. # if modifier key is pressed then we add to the selected list the current shape but if it's already
  696. # in the selected list, we removed it. Therefore first click selects, second deselects.
  697. if key_modifier == modifier_to_use:
  698. self.draw_app.select_tool(self.draw_app.active_tool.name)
  699. else:
  700. self.draw_app.select_tool("select")
  701. return
  702. def clean_up(self):
  703. self.draw_app.selected = []
  704. self.draw_app.apertures_table.clearSelection()
  705. self.draw_app.plot_all()
  706. class FCRegion(FCShapeTool):
  707. """
  708. Resulting type: Polygon
  709. """
  710. def __init__(self, draw_app):
  711. DrawTool.__init__(self, draw_app)
  712. self.name = 'region'
  713. self.draw_app = draw_app
  714. self.steps_per_circle = self.draw_app.app.defaults["gerber_circle_steps"]
  715. size_ap = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['size'])
  716. self.buf_val = (size_ap / 2) if size_ap > 0 else 0.0000001
  717. self.gridx_size = float(self.draw_app.app.ui.grid_gap_x_entry.get_value())
  718. self.gridy_size = float(self.draw_app.app.ui.grid_gap_y_entry.get_value())
  719. self.temp_points = []
  720. # this will store the inflexion point in the geometry
  721. self.inter_point = None
  722. try:
  723. QtGui.QGuiApplication.restoreOverrideCursor()
  724. except Exception as e:
  725. log.debug("FlatCAMGrbEditor.FCRegion --> %s" % str(e))
  726. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero.png'))
  727. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  728. self.draw_app.app.inform.emit(_('Corner Mode 1: 45 degrees ...'))
  729. self.start_msg = _("Click on 1st point ...")
  730. def click(self, point):
  731. self.draw_app.in_action = True
  732. if self.inter_point is not None:
  733. self.points.append(self.inter_point)
  734. self.points.append(point)
  735. if len(self.points) > 0:
  736. self.draw_app.app.inform.emit(_("Click on next Point or click Right mouse button to complete ..."))
  737. return "Click on next point or hit ENTER to complete ..."
  738. return ""
  739. def update_grid_info(self):
  740. self.gridx_size = float(self.draw_app.app.ui.grid_gap_x_entry.get_value())
  741. self.gridy_size = float(self.draw_app.app.ui.grid_gap_y_entry.get_value())
  742. def utility_geometry(self, data=None):
  743. new_geo_el = dict()
  744. x = data[0]
  745. y = data[1]
  746. if len(self.points) == 0:
  747. new_geo_el['solid'] = Point(data).buffer(self.buf_val, resolution=int(self.steps_per_circle / 4))
  748. return DrawToolUtilityShape(new_geo_el)
  749. if len(self.points) == 1:
  750. self.temp_points = [x for x in self.points]
  751. old_x = self.points[0][0]
  752. old_y = self.points[0][1]
  753. mx = abs(round((x - old_x) / self.gridx_size))
  754. my = abs(round((y - old_y) / self.gridy_size))
  755. if mx and my:
  756. if self.draw_app.app.ui.grid_snap_btn.isChecked():
  757. if self.draw_app.bend_mode != 5:
  758. if self.draw_app.bend_mode == 1:
  759. if x > old_x:
  760. if mx > my:
  761. self.inter_point = (old_x + self.gridx_size * (mx - my), old_y)
  762. if mx < my:
  763. if y < old_y:
  764. self.inter_point = (old_x, old_y - self.gridy_size * (my - mx))
  765. else:
  766. self.inter_point = (old_x, old_y - self.gridy_size * (mx - my))
  767. if x < old_x:
  768. if mx > my:
  769. self.inter_point = (old_x - self.gridx_size * (mx - my), old_y)
  770. if mx < my:
  771. if y < old_y:
  772. self.inter_point = (old_x, old_y - self.gridy_size * (my - mx))
  773. else:
  774. self.inter_point = (old_x, old_y - self.gridy_size * (mx - my))
  775. elif self.draw_app.bend_mode == 2:
  776. if x > old_x:
  777. if mx > my:
  778. self.inter_point = (old_x + self.gridx_size * my, y)
  779. if mx < my:
  780. if y < old_y:
  781. self.inter_point = (x, old_y - self.gridy_size * mx)
  782. else:
  783. self.inter_point = (x, old_y + self.gridy_size * mx)
  784. if x < old_x:
  785. if mx > my:
  786. self.inter_point = (old_x - self.gridx_size * my, y)
  787. if mx < my:
  788. if y < old_y:
  789. self.inter_point = (x, old_y - self.gridy_size * mx)
  790. else:
  791. self.inter_point = (x, old_y + self.gridy_size * mx)
  792. elif self.draw_app.bend_mode == 3:
  793. self.inter_point = (x, old_y)
  794. elif self.draw_app.bend_mode == 4:
  795. self.inter_point = (old_x, y)
  796. if self.inter_point is not None:
  797. self.temp_points.append(self.inter_point)
  798. else:
  799. self.inter_point = data
  800. else:
  801. self.inter_point = data
  802. self.temp_points.append(data)
  803. new_geo_el = dict()
  804. if len(self.temp_points) > 1:
  805. try:
  806. new_geo_el['solid'] = LineString(self.temp_points).buffer(self.buf_val,
  807. resolution=int(self.steps_per_circle / 4),
  808. join_style=1)
  809. return DrawToolUtilityShape(new_geo_el)
  810. except Exception as e:
  811. log.debug("FlatCAMGrbEditor.FCRegion.utility_geometry() --> %s" % str(e))
  812. else:
  813. new_geo_el['solid'] = Point(self.temp_points).buffer(self.buf_val,
  814. resolution=int(self.steps_per_circle / 4))
  815. return DrawToolUtilityShape(new_geo_el)
  816. if len(self.points) > 2:
  817. self.temp_points = [x for x in self.points]
  818. old_x = self.points[-1][0]
  819. old_y = self.points[-1][1]
  820. mx = abs(round((x - old_x) / self.gridx_size))
  821. my = abs(round((y - old_y) / self.gridy_size))
  822. if mx and my:
  823. if self.draw_app.app.ui.grid_snap_btn.isChecked():
  824. if self.draw_app.bend_mode != 5:
  825. if self.draw_app.bend_mode == 1:
  826. if x > old_x:
  827. if mx > my:
  828. self.inter_point = (old_x + self.gridx_size * (mx - my), old_y)
  829. if mx < my:
  830. if y < old_y:
  831. self.inter_point = (old_x, old_y - self.gridy_size * (my - mx))
  832. else:
  833. self.inter_point = (old_x, old_y - self.gridy_size * (mx - my))
  834. if x < old_x:
  835. if mx > my:
  836. self.inter_point = (old_x - self.gridx_size * (mx - my), old_y)
  837. if mx < my:
  838. if y < old_y:
  839. self.inter_point = (old_x, old_y - self.gridy_size * (my - mx))
  840. else:
  841. self.inter_point = (old_x, old_y - self.gridy_size * (mx - my))
  842. elif self.draw_app.bend_mode == 2:
  843. if x > old_x:
  844. if mx > my:
  845. self.inter_point = (old_x + self.gridx_size * my, y)
  846. if mx < my:
  847. if y < old_y:
  848. self.inter_point = (x, old_y - self.gridy_size * mx)
  849. else:
  850. self.inter_point = (x, old_y + self.gridy_size * mx)
  851. if x < old_x:
  852. if mx > my:
  853. self.inter_point = (old_x - self.gridx_size * my, y)
  854. if mx < my:
  855. if y < old_y:
  856. self.inter_point = (x, old_y - self.gridy_size * mx)
  857. else:
  858. self.inter_point = (x, old_y + self.gridy_size * mx)
  859. elif self.draw_app.bend_mode == 3:
  860. self.inter_point = (x, old_y)
  861. elif self.draw_app.bend_mode == 4:
  862. self.inter_point = (old_x, y)
  863. self.temp_points.append(self.inter_point)
  864. self.temp_points.append(data)
  865. new_geo_el = dict()
  866. new_geo_el['solid'] = LinearRing(self.temp_points).buffer(self.buf_val,
  867. resolution=int(self.steps_per_circle / 4),
  868. join_style=1)
  869. new_geo_el['follow'] = LinearRing(self.temp_points)
  870. return DrawToolUtilityShape(new_geo_el)
  871. return None
  872. def make(self):
  873. # self.geometry = LinearRing(self.points)
  874. if len(self.points) > 2:
  875. # regions are added always in the '0' aperture
  876. if '0' not in self.draw_app.storage_dict:
  877. self.draw_app.on_aperture_add(apid='0')
  878. else:
  879. self.draw_app.last_aperture_selected = '0'
  880. new_geo_el = dict()
  881. new_geo_el['solid'] = Polygon(self.points).buffer(self.buf_val,
  882. resolution=int(self.steps_per_circle / 4),
  883. join_style=2)
  884. new_geo_el['follow'] = Polygon(self.points).exterior
  885. self.geometry = DrawToolShape(new_geo_el)
  886. self.draw_app.in_action = False
  887. self.complete = True
  888. self.draw_app.app.inform.emit('[success] %s' %
  889. _("Done."))
  890. def clean_up(self):
  891. self.draw_app.selected = []
  892. self.draw_app.apertures_table.clearSelection()
  893. self.draw_app.plot_all()
  894. def on_key(self, key):
  895. if key == 'Backspace' or key == QtCore.Qt.Key_Backspace:
  896. if len(self.points) > 0:
  897. if self.draw_app.bend_mode == 5:
  898. self.points = self.points[0:-1]
  899. else:
  900. self.points = self.points[0:-2]
  901. # Remove any previous utility shape
  902. self.draw_app.tool_shape.clear(update=False)
  903. geo = self.utility_geometry(data=(self.draw_app.snap_x, self.draw_app.snap_y))
  904. self.draw_app.draw_utility_geometry(geo=geo)
  905. return _("Backtracked one point ...")
  906. if key == 'T' or key == QtCore.Qt.Key_T:
  907. if self.draw_app.bend_mode == 1:
  908. self.draw_app.bend_mode = 2
  909. msg = _('Corner Mode 2: Reverse 45 degrees ...')
  910. elif self.draw_app.bend_mode == 2:
  911. self.draw_app.bend_mode = 3
  912. msg = _('Corner Mode 3: 90 degrees ...')
  913. elif self.draw_app.bend_mode == 3:
  914. self.draw_app.bend_mode = 4
  915. msg = _('Corner Mode 4: Reverse 90 degrees ...')
  916. elif self.draw_app.bend_mode == 4:
  917. self.draw_app.bend_mode = 5
  918. msg = _('Corner Mode 5: Free angle ...')
  919. else:
  920. self.draw_app.bend_mode = 1
  921. msg = _('Corner Mode 1: 45 degrees ...')
  922. # Remove any previous utility shape
  923. self.draw_app.tool_shape.clear(update=False)
  924. geo = self.utility_geometry(data=(self.draw_app.snap_x, self.draw_app.snap_y))
  925. self.draw_app.draw_utility_geometry(geo=geo)
  926. return msg
  927. if key == 'R' or key == QtCore.Qt.Key_R:
  928. if self.draw_app.bend_mode == 1:
  929. self.draw_app.bend_mode = 5
  930. msg = _('Corner Mode 5: Free angle ...')
  931. elif self.draw_app.bend_mode == 5:
  932. self.draw_app.bend_mode = 4
  933. msg = _('Corner Mode 4: Reverse 90 degrees ...')
  934. elif self.draw_app.bend_mode == 4:
  935. self.draw_app.bend_mode = 3
  936. msg = _('Corner Mode 3: 90 degrees ...')
  937. elif self.draw_app.bend_mode == 3:
  938. self.draw_app.bend_mode = 2
  939. msg = _('Corner Mode 2: Reverse 45 degrees ...')
  940. else:
  941. self.draw_app.bend_mode = 1
  942. msg = _('Corner Mode 1: 45 degrees ...')
  943. # Remove any previous utility shape
  944. self.draw_app.tool_shape.clear(update=False)
  945. geo = self.utility_geometry(data=(self.draw_app.snap_x, self.draw_app.snap_y))
  946. self.draw_app.draw_utility_geometry(geo=geo)
  947. return msg
  948. class FCTrack(FCRegion):
  949. """
  950. Resulting type: Polygon
  951. """
  952. def __init__(self, draw_app):
  953. FCRegion.__init__(self, draw_app)
  954. self.name = 'track'
  955. self.draw_app = draw_app
  956. try:
  957. QtGui.QGuiApplication.restoreOverrideCursor()
  958. except Exception as e:
  959. log.debug("FlatCAMGrbEditor.FCTrack.__init__() --> %s" % str(e))
  960. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_path%s.png' % self.draw_app.bend_mode))
  961. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  962. self.draw_app.app.inform.emit(_('Track Mode 1: 45 degrees ...'))
  963. def make(self):
  964. new_geo_el = dict()
  965. if len(self.temp_points) == 1:
  966. new_geo_el['solid'] = Point(self.temp_points).buffer(self.buf_val,
  967. resolution=int(self.steps_per_circle / 4))
  968. new_geo_el['follow'] = Point(self.temp_points)
  969. else:
  970. new_geo_el['solid'] = (LineString(self.temp_points).buffer(
  971. self.buf_val, resolution=int(self.steps_per_circle / 4))).buffer(0)
  972. new_geo_el['follow'] = LineString(self.temp_points)
  973. self.geometry = DrawToolShape(new_geo_el)
  974. self.draw_app.in_action = False
  975. self.complete = True
  976. self.draw_app.app.inform.emit('[success] %s' %
  977. _("Done."))
  978. def clean_up(self):
  979. self.draw_app.selected = []
  980. self.draw_app.apertures_table.clearSelection()
  981. self.draw_app.plot_all()
  982. def click(self, point):
  983. self.draw_app.in_action = True
  984. try:
  985. if point != self.points[-1]:
  986. self.points.append(point)
  987. except IndexError:
  988. self.points.append(point)
  989. new_geo_el = dict()
  990. if len(self.temp_points) == 1:
  991. new_geo_el['solid'] = Point(self.temp_points).buffer(self.buf_val,
  992. resolution=int(self.steps_per_circle / 4))
  993. new_geo_el['follow'] = Point(self.temp_points)
  994. else:
  995. new_geo_el['solid'] = LineString(self.temp_points).buffer(self.buf_val,
  996. resolution=int(self.steps_per_circle / 4))
  997. new_geo_el['follow'] = LineString(self.temp_points)
  998. self.draw_app.add_gerber_shape(DrawToolShape(new_geo_el),
  999. self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['geometry'])
  1000. self.draw_app.plot_all()
  1001. if len(self.points) > 0:
  1002. self.draw_app.app.inform.emit(_("Click on next Point or click Right mouse button to complete ..."))
  1003. return "Click on next point or hit ENTER to complete ..."
  1004. return ""
  1005. def utility_geometry(self, data=None):
  1006. self.update_grid_info()
  1007. new_geo_el = dict()
  1008. if len(self.points) == 0:
  1009. new_geo_el['solid'] = Point(data).buffer(self.buf_val,
  1010. resolution=int(self.steps_per_circle / 4))
  1011. return DrawToolUtilityShape(new_geo_el)
  1012. elif len(self.points) > 0:
  1013. self.temp_points = [self.points[-1]]
  1014. old_x = self.points[-1][0]
  1015. old_y = self.points[-1][1]
  1016. x = data[0]
  1017. y = data[1]
  1018. mx = abs(round((x - old_x) / self.gridx_size))
  1019. my = abs(round((y - old_y) / self.gridy_size))
  1020. if self.draw_app.app.ui.grid_snap_btn.isChecked():
  1021. if self.draw_app.bend_mode == 1:
  1022. if x > old_x:
  1023. if mx > my:
  1024. self.temp_points.append((old_x + self.gridx_size*(mx-my), old_y))
  1025. if mx < my:
  1026. if y < old_y:
  1027. self.temp_points.append((old_x, old_y - self.gridy_size * (my-mx)))
  1028. else:
  1029. self.temp_points.append((old_x, old_y - self.gridy_size * (mx-my)))
  1030. if x < old_x:
  1031. if mx > my:
  1032. self.temp_points.append((old_x - self.gridx_size*(mx-my), old_y))
  1033. if mx < my:
  1034. if y < old_y:
  1035. self.temp_points.append((old_x, old_y - self.gridy_size * (my-mx)))
  1036. else:
  1037. self.temp_points.append((old_x, old_y - self.gridy_size * (mx-my)))
  1038. elif self.draw_app.bend_mode == 2:
  1039. if x > old_x:
  1040. if mx > my:
  1041. self.temp_points.append((old_x + self.gridx_size*my, y))
  1042. if mx < my:
  1043. if y < old_y:
  1044. self.temp_points.append((x, old_y - self.gridy_size * mx))
  1045. else:
  1046. self.temp_points.append((x, old_y + self.gridy_size * mx))
  1047. if x < old_x:
  1048. if mx > my:
  1049. self.temp_points.append((old_x - self.gridx_size * my, y))
  1050. if mx < my:
  1051. if y < old_y:
  1052. self.temp_points.append((x, old_y - self.gridy_size * mx))
  1053. else:
  1054. self.temp_points.append((x, old_y + self.gridy_size * mx))
  1055. elif self.draw_app.bend_mode == 3:
  1056. self.temp_points.append((x, old_y))
  1057. elif self.draw_app.bend_mode == 4:
  1058. self.temp_points.append((old_x, y))
  1059. else:
  1060. pass
  1061. self.temp_points.append(data)
  1062. if len(self.temp_points) == 1:
  1063. new_geo_el['solid'] = Point(self.temp_points).buffer(self.buf_val,
  1064. resolution=int(self.steps_per_circle / 4))
  1065. return DrawToolUtilityShape(new_geo_el)
  1066. new_geo_el['solid'] = LineString(self.temp_points).buffer(self.buf_val,
  1067. resolution=int(self.steps_per_circle / 4))
  1068. return DrawToolUtilityShape(new_geo_el)
  1069. def on_key(self, key):
  1070. if key == 'Backspace' or key == QtCore.Qt.Key_Backspace:
  1071. if len(self.points) > 0:
  1072. self.temp_points = self.points[0:-1]
  1073. # Remove any previous utility shape
  1074. self.draw_app.tool_shape.clear(update=False)
  1075. geo = self.utility_geometry(data=(self.draw_app.snap_x, self.draw_app.snap_y))
  1076. self.draw_app.draw_utility_geometry(geo=geo)
  1077. return _("Backtracked one point ...")
  1078. if key == 'T' or key == QtCore.Qt.Key_T:
  1079. try:
  1080. QtGui.QGuiApplication.restoreOverrideCursor()
  1081. except Exception as e:
  1082. log.debug("FlatCAMGrbEditor.FCTrack.on_key() --> %s" % str(e))
  1083. if self.draw_app.bend_mode == 1:
  1084. self.draw_app.bend_mode = 2
  1085. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_path2.png'))
  1086. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1087. msg = _('Track Mode 2: Reverse 45 degrees ...')
  1088. elif self.draw_app.bend_mode == 2:
  1089. self.draw_app.bend_mode = 3
  1090. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_path3.png'))
  1091. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1092. msg = _('Track Mode 3: 90 degrees ...')
  1093. elif self.draw_app.bend_mode == 3:
  1094. self.draw_app.bend_mode = 4
  1095. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_path4.png'))
  1096. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1097. msg = _('Track Mode 4: Reverse 90 degrees ...')
  1098. elif self.draw_app.bend_mode == 4:
  1099. self.draw_app.bend_mode = 5
  1100. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_path5.png'))
  1101. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1102. msg = _('Track Mode 5: Free angle ...')
  1103. else:
  1104. self.draw_app.bend_mode = 1
  1105. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_path1.png'))
  1106. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1107. msg = _('Track Mode 1: 45 degrees ...')
  1108. # Remove any previous utility shape
  1109. self.draw_app.tool_shape.clear(update=False)
  1110. geo = self.utility_geometry(data=(self.draw_app.snap_x, self.draw_app.snap_y))
  1111. self.draw_app.draw_utility_geometry(geo=geo)
  1112. return msg
  1113. if key == 'R' or key == QtCore.Qt.Key_R:
  1114. try:
  1115. QtGui.QGuiApplication.restoreOverrideCursor()
  1116. except Exception as e:
  1117. log.debug("FlatCAMGrbEditor.FCTrack.on_key() --> %s" % str(e))
  1118. if self.draw_app.bend_mode == 1:
  1119. self.draw_app.bend_mode = 5
  1120. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_path5.png'))
  1121. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1122. msg = _('Track Mode 5: Free angle ...')
  1123. elif self.draw_app.bend_mode == 5:
  1124. self.draw_app.bend_mode = 4
  1125. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_path4.png'))
  1126. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1127. msg = _('Track Mode 4: Reverse 90 degrees ...')
  1128. elif self.draw_app.bend_mode == 4:
  1129. self.draw_app.bend_mode = 3
  1130. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_path3.png'))
  1131. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1132. msg = _('Track Mode 3: 90 degrees ...')
  1133. elif self.draw_app.bend_mode == 3:
  1134. self.draw_app.bend_mode = 2
  1135. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_path2.png'))
  1136. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1137. msg = _('Track Mode 2: Reverse 45 degrees ...')
  1138. else:
  1139. self.draw_app.bend_mode = 1
  1140. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_path1.png'))
  1141. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1142. msg = _('Track Mode 1: 45 degrees ...')
  1143. # Remove any previous utility shape
  1144. self.draw_app.tool_shape.clear(update=False)
  1145. geo = self.utility_geometry(data=(self.draw_app.snap_x, self.draw_app.snap_y))
  1146. self.draw_app.draw_utility_geometry(geo=geo)
  1147. return msg
  1148. class FCDisc(FCShapeTool):
  1149. """
  1150. Resulting type: Polygon
  1151. """
  1152. def __init__(self, draw_app):
  1153. DrawTool.__init__(self, draw_app)
  1154. self.name = 'disc'
  1155. try:
  1156. QtGui.QGuiApplication.restoreOverrideCursor()
  1157. except Exception as e:
  1158. pass
  1159. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_disc.png'))
  1160. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1161. size_ap = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['size'])
  1162. self.buf_val = (size_ap / 2) if size_ap > 0 else 0.0000001
  1163. if '0' in self.draw_app.storage_dict:
  1164. self.storage_obj = self.draw_app.storage_dict['0']['geometry']
  1165. else:
  1166. self.draw_app.storage_dict['0'] = dict()
  1167. self.draw_app.storage_dict['0']['type'] = 'C'
  1168. self.draw_app.storage_dict['0']['size'] = 0.0
  1169. self.draw_app.storage_dict['0']['geometry'] = list()
  1170. self.storage_obj = self.draw_app.storage_dict['0']['geometry']
  1171. self.draw_app.app.inform.emit(_("Click on Center point ..."))
  1172. self.steps_per_circ = self.draw_app.app.defaults["gerber_circle_steps"]
  1173. def click(self, point):
  1174. self.points.append(point)
  1175. if len(self.points) == 1:
  1176. self.draw_app.app.inform.emit(_("Click on Perimeter point to complete ..."))
  1177. return "Click on Perimeter to complete ..."
  1178. if len(self.points) == 2:
  1179. self.make()
  1180. return "Done."
  1181. return ""
  1182. def utility_geometry(self, data=None):
  1183. new_geo_el = dict()
  1184. if len(self.points) == 1:
  1185. p1 = self.points[0]
  1186. p2 = data
  1187. radius = math.sqrt((p1[0] - p2[0]) ** 2 + (p1[1] - p2[1]) ** 2)
  1188. new_geo_el['solid'] = Point(p1).buffer((radius + self.buf_val / 2), int(self.steps_per_circ / 4))
  1189. return DrawToolUtilityShape(new_geo_el)
  1190. return None
  1191. def make(self):
  1192. new_geo_el = dict()
  1193. try:
  1194. QtGui.QGuiApplication.restoreOverrideCursor()
  1195. except Exception as e:
  1196. log.debug("FlatCAMGrbEditor.FCDisc --> %s" % str(e))
  1197. self.draw_app.current_storage = self.storage_obj
  1198. p1 = self.points[0]
  1199. p2 = self.points[1]
  1200. radius = distance(p1, p2)
  1201. new_geo_el['solid'] = Point(p1).buffer((radius + self.buf_val / 2), int(self.steps_per_circ / 4))
  1202. new_geo_el['follow'] = Point(p1).buffer((radius + self.buf_val / 2), int(self.steps_per_circ / 4)).exterior
  1203. self.geometry = DrawToolShape(new_geo_el)
  1204. self.draw_app.in_action = False
  1205. self.complete = True
  1206. self.draw_app.app.inform.emit('[success] %s' %
  1207. _("Done."))
  1208. def clean_up(self):
  1209. self.draw_app.selected = []
  1210. self.draw_app.apertures_table.clearSelection()
  1211. self.draw_app.plot_all()
  1212. class FCSemiDisc(FCShapeTool):
  1213. def __init__(self, draw_app):
  1214. DrawTool.__init__(self, draw_app)
  1215. self.name = 'semidisc'
  1216. try:
  1217. QtGui.QGuiApplication.restoreOverrideCursor()
  1218. except Exception as e:
  1219. log.debug("FlatCAMGrbEditor.FCSemiDisc --> %s" % str(e))
  1220. self.cursor = QtGui.QCursor(QtGui.QPixmap('share/aero_semidisc.png'))
  1221. QtGui.QGuiApplication.setOverrideCursor(self.cursor)
  1222. self.draw_app.app.inform.emit(_("Click on Center point ..."))
  1223. # Direction of rotation between point 1 and 2.
  1224. # 'cw' or 'ccw'. Switch direction by hitting the
  1225. # 'o' key.
  1226. self.direction = "cw"
  1227. # Mode
  1228. # C12 = Center, p1, p2
  1229. # 12C = p1, p2, Center
  1230. # 132 = p1, p3, p2
  1231. self.mode = "c12" # Center, p1, p2
  1232. size_ap = float(self.draw_app.storage_dict[self.draw_app.last_aperture_selected]['size'])
  1233. self.buf_val = (size_ap / 2) if size_ap > 0 else 0.0000001
  1234. if '0' in self.draw_app.storage_dict:
  1235. self.storage_obj = self.draw_app.storage_dict['0']['geometry']
  1236. else:
  1237. self.draw_app.storage_dict['0'] = dict()
  1238. self.draw_app.storage_dict['0']['type'] = 'C'
  1239. self.draw_app.storage_dict['0']['size'] = 0.0
  1240. self.draw_app.storage_dict['0']['geometry'] = list()
  1241. self.storage_obj = self.draw_app.storage_dict['0']['geometry']
  1242. self.steps_per_circ = self.draw_app.app.defaults["gerber_circle_steps"]
  1243. def click(self, point):
  1244. self.points.append(point)
  1245. if len(self.points) == 1:
  1246. if self.mode == 'c12':
  1247. self.draw_app.app.inform.emit(_("Click on Start point ..."))
  1248. elif self.mode == '132':
  1249. self.draw_app.app.inform.emit(_("Click on Point3 ..."))
  1250. else:
  1251. self.draw_app.app.inform.emit(_("Click on Stop point ..."))
  1252. return "Click on 1st point ..."
  1253. if len(self.points) == 2:
  1254. if self.mode == 'c12':
  1255. self.draw_app.app.inform.emit(_("Click on Stop point to complete ..."))
  1256. elif self.mode == '132':
  1257. self.draw_app.app.inform.emit(_("Click on Point2 to complete ..."))
  1258. else:
  1259. self.draw_app.app.inform.emit(_("Click on Center point to complete ..."))
  1260. return "Click on 2nd point to complete ..."
  1261. if len(self.points) == 3:
  1262. self.make()
  1263. return "Done."
  1264. return ""
  1265. def on_key(self, key):
  1266. if key == 'D' or key == QtCore.Qt.Key_D:
  1267. self.direction = 'cw' if self.direction == 'ccw' else 'ccw'
  1268. return '%s: %s' % (_('Direction'), self.direction.upper())
  1269. if key == 'M' or key == QtCore.Qt.Key_M:
  1270. # delete the possible points made before this action; we want to start anew
  1271. self.points = []
  1272. # and delete the utility geometry made up until this point
  1273. self.draw_app.delete_utility_geometry()
  1274. if self.mode == 'c12':
  1275. self.mode = '12c'
  1276. return _('Mode: Start -> Stop -> Center. Click on Start point ...')
  1277. elif self.mode == '12c':
  1278. self.mode = '132'
  1279. return _('Mode: Point1 -> Point3 -> Point2. Click on Point1 ...')
  1280. else:
  1281. self.mode = 'c12'
  1282. return _('Mode: Center -> Start -> Stop. Click on Center point ...')
  1283. def utility_geometry(self, data=None):
  1284. new_geo_el = dict()
  1285. new_geo_el_pt1 = dict()
  1286. new_geo_el_pt2 = dict()
  1287. new_geo_el_pt3 = dict()
  1288. if len(self.points) == 1: # Show the radius
  1289. center = self.points[0]
  1290. p1 = data
  1291. new_geo_el['solid'] = LineString([center, p1])
  1292. return DrawToolUtilityShape(new_geo_el)
  1293. if len(self.points) == 2: # Show the arc
  1294. if self.mode == 'c12':
  1295. center = self.points[0]
  1296. p1 = self.points[1]
  1297. p2 = data
  1298. radius = np.sqrt((center[0] - p1[0]) ** 2 + (center[1] - p1[1]) ** 2) + (self.buf_val / 2)
  1299. startangle = np.arctan2(p1[1] - center[1], p1[0] - center[0])
  1300. stopangle = np.arctan2(p2[1] - center[1], p2[0] - center[0])
  1301. new_geo_el['solid'] = LineString(
  1302. arc(center, radius, startangle, stopangle, self.direction, self.steps_per_circ))
  1303. new_geo_el_pt1['solid'] = Point(center)
  1304. return DrawToolUtilityShape([new_geo_el, new_geo_el_pt1])
  1305. elif self.mode == '132':
  1306. p1 = np.array(self.points[0])
  1307. p3 = np.array(self.points[1])
  1308. p2 = np.array(data)
  1309. try:
  1310. center, radius, t = three_point_circle(p1, p2, p3)
  1311. except TypeError:
  1312. return
  1313. direction = 'cw' if np.sign(t) > 0 else 'ccw'
  1314. radius += (self.buf_val / 2)
  1315. startangle = np.arctan2(p1[1] - center[1], p1[0] - center[0])
  1316. stopangle = np.arctan2(p3[1] - center[1], p3[0] - center[0])
  1317. new_geo_el['solid'] = LineString(
  1318. arc(center, radius, startangle, stopangle, direction, self.steps_per_circ))
  1319. new_geo_el_pt2['solid'] = Point(center)
  1320. new_geo_el_pt1['solid'] = Point(p1)
  1321. new_geo_el_pt3['solid'] = Point(p3)
  1322. return DrawToolUtilityShape([new_geo_el, new_geo_el_pt2, new_geo_el_pt1, new_geo_el_pt3])
  1323. else: # '12c'
  1324. p1 = np.array(self.points[0])
  1325. p2 = np.array(self.points[1])
  1326. # Midpoint
  1327. a = (p1 + p2) / 2.0
  1328. # Parallel vector
  1329. c = p2 - p1
  1330. # Perpendicular vector
  1331. b = np.dot(c, np.array([[0, -1], [1, 0]], dtype=np.float32))
  1332. b /= numpy_norm(b)
  1333. # Distance
  1334. t = distance(data, a)
  1335. # Which side? Cross product with c.
  1336. # cross(M-A, B-A), where line is AB and M is test point.
  1337. side = (data[0] - p1[0]) * c[1] - (data[1] - p1[1]) * c[0]
  1338. t *= np.sign(side)
  1339. # Center = a + bt
  1340. center = a + b * t
  1341. radius = numpy_norm(center - p1) + (self.buf_val / 2)
  1342. startangle = np.arctan2(p1[1] - center[1], p1[0] - center[0])
  1343. stopangle = np.arctan2(p2[1] - center[1], p2[0] - center[0])
  1344. new_geo_el['solid'] = LineString(
  1345. arc(center, radius, startangle, stopangle, self.direction, self.steps_per_circ))
  1346. new_geo_el_pt2['solid'] = Point(center)
  1347. return DrawToolUtilityShape([new_geo_el, new_geo_el_pt2])
  1348. return None
  1349. def make(self):
  1350. self.draw_app.current_storage = self.storage_obj
  1351. new_geo_el = dict()
  1352. if self.mode == 'c12':
  1353. center = self.points[0]
  1354. p1 = self.points[1]
  1355. p2 = self.points[2]
  1356. radius = distance(center, p1) + (self.buf_val / 2)
  1357. start_angle = np.arctan2(p1[1] - center[1], p1[0] - center[0])
  1358. stop_angle = np.arctan2(p2[1] - center[1], p2[0] - center[0])
  1359. new_geo_el['solid'] = Polygon(
  1360. arc(center, radius, start_angle, stop_angle, self.direction, self.steps_per_circ))
  1361. new_geo_el['follow'] = Polygon(
  1362. arc(center, radius, start_angle, stop_angle, self.direction, self.steps_per_circ)).exterior
  1363. self.geometry = DrawToolShape(new_geo_el)
  1364. elif self.mode == '132':
  1365. p1 = np.array(self.points[0])
  1366. p3 = np.array(self.points[1])
  1367. p2 = np.array(self.points[2])
  1368. center, radius, t = three_point_circle(p1, p2, p3)
  1369. direction = 'cw' if np.sign(t) > 0 else 'ccw'
  1370. radius += (self.buf_val / 2)
  1371. start_angle = np.arctan2(p1[1] - center[1], p1[0] - center[0])
  1372. stop_angle = np.arctan2(p3[1] - center[1], p3[0] - center[0])
  1373. new_geo_el['solid'] = Polygon(arc(center, radius, start_angle, stop_angle, direction, self.steps_per_circ))
  1374. new_geo_el['follow'] = Polygon(
  1375. arc(center, radius, start_angle, stop_angle, direction, self.steps_per_circ)).exterior
  1376. self.geometry = DrawToolShape(new_geo_el)
  1377. else: # self.mode == '12c'
  1378. p1 = np.array(self.points[0])
  1379. p2 = np.array(self.points[1])
  1380. pc = np.array(self.points[2])
  1381. # Midpoint
  1382. a = (p1 + p2) / 2.0
  1383. # Parallel vector
  1384. c = p2 - p1
  1385. # Perpendicular vector
  1386. b = np.dot(c, np.array([[0, -1], [1, 0]], dtype=np.float32))
  1387. b /= numpy_norm(b)
  1388. # Distance
  1389. t = distance(pc, a)
  1390. # Which side? Cross product with c.
  1391. # cross(M-A, B-A), where line is AB and M is test point.
  1392. side = (pc[0] - p1[0]) * c[1] - (pc[1] - p1[1]) * c[0]
  1393. t *= np.sign(side)
  1394. # Center = a + bt
  1395. center = a + b * t
  1396. radius = numpy_norm(center - p1) + (self.buf_val / 2)
  1397. start_angle = np.arctan2(p1[1] - center[1], p1[0] - center[0])
  1398. stop_angle = np.arctan2(p2[1] - center[1], p2[0] - center[0])
  1399. new_geo_el['solid'] = Polygon(
  1400. arc(center, radius, start_angle, stop_angle, self.direction, self.steps_per_circ))
  1401. new_geo_el['follow'] = Polygon(
  1402. arc(center, radius, start_angle, stop_angle, self.direction, self.steps_per_circ)).exterior
  1403. self.geometry = DrawToolShape(new_geo_el)
  1404. self.draw_app.in_action = False
  1405. self.complete = True
  1406. self.draw_app.app.inform.emit('[success] %s' %
  1407. _("Done."))
  1408. def clean_up(self):
  1409. self.draw_app.selected = []
  1410. self.draw_app.apertures_table.clearSelection()
  1411. self.draw_app.plot_all()
  1412. class FCScale(FCShapeTool):
  1413. def __init__(self, draw_app):
  1414. FCShapeTool.__init__(self, draw_app)
  1415. self.name = 'scale'
  1416. # self.shape_buffer = self.draw_app.shape_buffer
  1417. self.draw_app = draw_app
  1418. self.app = draw_app.app
  1419. self.draw_app.app.inform.emit(_("Scale the selected Gerber apertures ..."))
  1420. self.origin = (0, 0)
  1421. if self.draw_app.app.ui.splitter.sizes()[0] == 0:
  1422. self.draw_app.app.ui.splitter.setSizes([1, 1])
  1423. self.activate_scale()
  1424. def activate_scale(self):
  1425. self.draw_app.hide_tool('all')
  1426. self.draw_app.scale_tool_frame.show()
  1427. try:
  1428. self.draw_app.scale_button.clicked.disconnect()
  1429. except (TypeError, AttributeError):
  1430. pass
  1431. self.draw_app.scale_button.clicked.connect(self.on_scale_click)
  1432. def deactivate_scale(self):
  1433. self.draw_app.scale_button.clicked.disconnect()
  1434. self.complete = True
  1435. self.draw_app.select_tool("select")
  1436. self.draw_app.hide_tool(self.name)
  1437. def on_scale_click(self):
  1438. self.draw_app.on_scale()
  1439. self.deactivate_scale()
  1440. def clean_up(self):
  1441. self.draw_app.selected = []
  1442. self.draw_app.apertures_table.clearSelection()
  1443. self.draw_app.plot_all()
  1444. class FCBuffer(FCShapeTool):
  1445. def __init__(self, draw_app):
  1446. FCShapeTool.__init__(self, draw_app)
  1447. self.name = 'buffer'
  1448. # self.shape_buffer = self.draw_app.shape_buffer
  1449. self.draw_app = draw_app
  1450. self.app = draw_app.app
  1451. self.draw_app.app.inform.emit(_("Buffer the selected apertures ..."))
  1452. self.origin = (0, 0)
  1453. if self.draw_app.app.ui.splitter.sizes()[0] == 0:
  1454. self.draw_app.app.ui.splitter.setSizes([1, 1])
  1455. self.activate_buffer()
  1456. def activate_buffer(self):
  1457. self.draw_app.hide_tool('all')
  1458. self.draw_app.buffer_tool_frame.show()
  1459. try:
  1460. self.draw_app.buffer_button.clicked.disconnect()
  1461. except (TypeError, AttributeError):
  1462. pass
  1463. self.draw_app.buffer_button.clicked.connect(self.on_buffer_click)
  1464. def deactivate_buffer(self):
  1465. self.draw_app.buffer_button.clicked.disconnect()
  1466. self.complete = True
  1467. self.draw_app.select_tool("select")
  1468. self.draw_app.hide_tool(self.name)
  1469. def on_buffer_click(self):
  1470. self.draw_app.on_buffer()
  1471. self.deactivate_buffer()
  1472. def clean_up(self):
  1473. self.draw_app.selected = []
  1474. self.draw_app.apertures_table.clearSelection()
  1475. self.draw_app.plot_all()
  1476. class FCMarkArea(FCShapeTool):
  1477. def __init__(self, draw_app):
  1478. FCShapeTool.__init__(self, draw_app)
  1479. self.name = 'markarea'
  1480. # self.shape_buffer = self.draw_app.shape_buffer
  1481. self.draw_app = draw_app
  1482. self.app = draw_app.app
  1483. self.draw_app.app.inform.emit(_("Mark polygon areas in the edited Gerber ..."))
  1484. self.origin = (0, 0)
  1485. if self.draw_app.app.ui.splitter.sizes()[0] == 0:
  1486. self.draw_app.app.ui.splitter.setSizes([1, 1])
  1487. self.activate_markarea()
  1488. def activate_markarea(self):
  1489. self.draw_app.ma_tool_frame.show()
  1490. # clear previous marking
  1491. self.draw_app.ma_annotation.clear(update=True)
  1492. try:
  1493. self.draw_app.ma_threshold_button.clicked.disconnect()
  1494. except (TypeError, AttributeError):
  1495. pass
  1496. self.draw_app.ma_threshold_button.clicked.connect(self.on_markarea_click)
  1497. try:
  1498. self.draw_app.ma_delete_button.clicked.disconnect()
  1499. except TypeError:
  1500. pass
  1501. self.draw_app.ma_delete_button.clicked.connect(self.on_markarea_delete)
  1502. try:
  1503. self.draw_app.ma_clear_button.clicked.disconnect()
  1504. except TypeError:
  1505. pass
  1506. self.draw_app.ma_clear_button.clicked.connect(self.on_markarea_clear)
  1507. def deactivate_markarea(self):
  1508. self.draw_app.ma_threshold_button.clicked.disconnect()
  1509. self.complete = True
  1510. self.draw_app.select_tool("select")
  1511. self.draw_app.hide_tool(self.name)
  1512. def on_markarea_click(self):
  1513. self.draw_app.on_markarea()
  1514. def on_markarea_clear(self):
  1515. self.draw_app.ma_annotation.clear(update=True)
  1516. self.deactivate_markarea()
  1517. def on_markarea_delete(self):
  1518. self.draw_app.delete_marked_polygons()
  1519. self.on_markarea_clear()
  1520. def clean_up(self):
  1521. self.draw_app.selected = []
  1522. self.draw_app.apertures_table.clearSelection()
  1523. self.draw_app.plot_all()
  1524. class FCApertureMove(FCShapeTool):
  1525. def __init__(self, draw_app):
  1526. DrawTool.__init__(self, draw_app)
  1527. self.name = 'move'
  1528. # self.shape_buffer = self.draw_app.shape_buffer
  1529. self.origin = None
  1530. self.destination = None
  1531. self.selected_apertures = []
  1532. if len(self.draw_app.get_selected()) == 0:
  1533. self.draw_app.app.inform.emit('[WARNING_NOTCL] %s...' %
  1534. _("Nothing selected to move"))
  1535. self.complete = True
  1536. self.draw_app.select_tool("select")
  1537. return
  1538. if self.draw_app.launched_from_shortcuts is True:
  1539. self.draw_app.launched_from_shortcuts = False
  1540. self.draw_app.app.inform.emit(_("Click on target location ..."))
  1541. else:
  1542. self.draw_app.app.inform.emit(_("Click on reference location ..."))
  1543. self.current_storage = None
  1544. self.geometry = []
  1545. for index in self.draw_app.apertures_table.selectedIndexes():
  1546. row = index.row()
  1547. # on column 1 in tool tables we hold the aperture codes, and we retrieve them as strings
  1548. aperture_on_row = self.draw_app.apertures_table.item(row, 1).text()
  1549. self.selected_apertures.append(aperture_on_row)
  1550. # Switch notebook to Selected page
  1551. self.draw_app.app.ui.notebook.setCurrentWidget(self.draw_app.app.ui.selected_tab)
  1552. self.sel_limit = self.draw_app.app.defaults["gerber_editor_sel_limit"]
  1553. self.selection_shape = self.selection_bbox()
  1554. def set_origin(self, origin):
  1555. self.origin = origin
  1556. def click(self, point):
  1557. if len(self.draw_app.get_selected()) == 0:
  1558. return "Nothing to move."
  1559. if self.origin is None:
  1560. self.set_origin(point)
  1561. self.draw_app.app.inform.emit(_("Click on target location ..."))
  1562. return
  1563. else:
  1564. self.destination = point
  1565. self.make()
  1566. # MS: always return to the Select Tool
  1567. self.draw_app.select_tool("select")
  1568. return
  1569. # def create_png(self):
  1570. # """
  1571. # Create a PNG file out of a list of Shapely polygons
  1572. # :return:
  1573. # """
  1574. # if len(self.draw_app.get_selected()) == 0:
  1575. # return None
  1576. #
  1577. # geo_list = [geoms.geo for geoms in self.draw_app.get_selected()]
  1578. # xmin, ymin, xmax, ymax = get_shapely_list_bounds(geo_list)
  1579. #
  1580. # iwidth = (xmax - xmin)
  1581. # iwidth = int(round(iwidth))
  1582. # iheight = (ymax - ymin)
  1583. # iheight = int(round(iheight))
  1584. # c = pngcanvas.PNGCanvas(iwidth, iheight)
  1585. #
  1586. # pixels = []
  1587. # for geom in self.draw_app.get_selected():
  1588. # m = mapping(geom.geo.exterior)
  1589. # pixels += [[coord[0], coord[1]] for coord in m['coordinates']]
  1590. # for g in geom.geo.interiors:
  1591. # m = mapping(g)
  1592. # pixels += [[coord[0], coord[1]] for coord in m['coordinates']]
  1593. # c.polyline(pixels)
  1594. # pixels = []
  1595. #
  1596. # f = open("%s.png" % 'D:\\shapely_image', "wb")
  1597. # f.write(c.dump())
  1598. # f.close()
  1599. def selection_bbox(self):
  1600. geo_list = []
  1601. for select_shape in self.draw_app.get_selected():
  1602. geometric_data = select_shape.geo
  1603. geo_list.append(geometric_data['solid'])
  1604. xmin, ymin, xmax, ymax = get_shapely_list_bounds(geo_list)
  1605. pt1 = (xmin, ymin)
  1606. pt2 = (xmax, ymin)
  1607. pt3 = (xmax, ymax)
  1608. pt4 = (xmin, ymax)
  1609. return Polygon([pt1, pt2, pt3, pt4])
  1610. def make(self):
  1611. # Create new geometry
  1612. dx = self.destination[0] - self.origin[0]
  1613. dy = self.destination[1] - self.origin[1]
  1614. sel_shapes_to_be_deleted = []
  1615. for sel_dia in self.selected_apertures:
  1616. self.current_storage = self.draw_app.storage_dict[sel_dia]['geometry']
  1617. for select_shape in self.draw_app.get_selected():
  1618. if select_shape in self.current_storage:
  1619. geometric_data = select_shape.geo
  1620. new_geo_el = dict()
  1621. if 'solid' in geometric_data:
  1622. new_geo_el['solid'] = affinity.translate(geometric_data['solid'], xoff=dx, yoff=dy)
  1623. if 'follow' in geometric_data:
  1624. new_geo_el['follow'] = affinity.translate(geometric_data['follow'], xoff=dx, yoff=dy)
  1625. if 'clear' in geometric_data:
  1626. new_geo_el['clear'] = affinity.translate(geometric_data['clear'], xoff=dx, yoff=dy)
  1627. self.geometry.append(DrawToolShape(new_geo_el))
  1628. self.current_storage.remove(select_shape)
  1629. sel_shapes_to_be_deleted.append(select_shape)
  1630. self.draw_app.on_grb_shape_complete(self.current_storage, no_plot=True)
  1631. self.geometry = []
  1632. for shp in sel_shapes_to_be_deleted:
  1633. self.draw_app.selected.remove(shp)
  1634. sel_shapes_to_be_deleted = []
  1635. self.draw_app.plot_all()
  1636. self.draw_app.build_ui()
  1637. self.draw_app.app.inform.emit('[success] %s' %
  1638. _("Done. Apertures Move completed."))
  1639. def clean_up(self):
  1640. self.draw_app.selected = []
  1641. self.draw_app.apertures_table.clearSelection()
  1642. self.draw_app.plot_all()
  1643. def utility_geometry(self, data=None):
  1644. """
  1645. Temporary geometry on screen while using this tool.
  1646. :param data:
  1647. :return:
  1648. """
  1649. geo_list = []
  1650. if self.origin is None:
  1651. return None
  1652. if len(self.draw_app.get_selected()) == 0:
  1653. return None
  1654. dx = data[0] - self.origin[0]
  1655. dy = data[1] - self.origin[1]
  1656. if len(self.draw_app.get_selected()) <= self.sel_limit:
  1657. for geom in self.draw_app.get_selected():
  1658. new_geo_el = dict()
  1659. if 'solid' in geom.geo:
  1660. new_geo_el['solid'] = affinity.translate(geom.geo['solid'], xoff=dx, yoff=dy)
  1661. if 'follow' in geom.geo:
  1662. new_geo_el['follow'] = affinity.translate(geom.geo['follow'], xoff=dx, yoff=dy)
  1663. if 'clear' in geom.geo:
  1664. new_geo_el['clear'] = affinity.translate(geom.geo['clear'], xoff=dx, yoff=dy)
  1665. geo_list.append(deepcopy(new_geo_el))
  1666. return DrawToolUtilityShape(geo_list)
  1667. else:
  1668. ss_el = dict()
  1669. ss_el['solid'] = affinity.translate(self.selection_shape, xoff=dx, yoff=dy)
  1670. return DrawToolUtilityShape(ss_el)
  1671. class FCApertureCopy(FCApertureMove):
  1672. def __init__(self, draw_app):
  1673. FCApertureMove.__init__(self, draw_app)
  1674. self.name = 'copy'
  1675. def make(self):
  1676. # Create new geometry
  1677. dx = self.destination[0] - self.origin[0]
  1678. dy = self.destination[1] - self.origin[1]
  1679. sel_shapes_to_be_deleted = []
  1680. for sel_dia in self.selected_apertures:
  1681. self.current_storage = self.draw_app.storage_dict[sel_dia]['geometry']
  1682. for select_shape in self.draw_app.get_selected():
  1683. if select_shape in self.current_storage:
  1684. geometric_data = select_shape.geo
  1685. new_geo_el = dict()
  1686. if 'solid' in geometric_data:
  1687. new_geo_el['solid'] = affinity.translate(geometric_data['solid'], xoff=dx, yoff=dy)
  1688. if 'follow' in geometric_data:
  1689. new_geo_el['follow'] = affinity.translate(geometric_data['follow'], xoff=dx, yoff=dy)
  1690. if 'clear' in geometric_data:
  1691. new_geo_el['clear'] = affinity.translate(geometric_data['clear'], xoff=dx, yoff=dy)
  1692. self.geometry.append(DrawToolShape(new_geo_el))
  1693. sel_shapes_to_be_deleted.append(select_shape)
  1694. self.draw_app.on_grb_shape_complete(self.current_storage)
  1695. self.geometry = []
  1696. for shp in sel_shapes_to_be_deleted:
  1697. self.draw_app.selected.remove(shp)
  1698. sel_shapes_to_be_deleted = []
  1699. self.draw_app.build_ui()
  1700. self.draw_app.app.inform.emit('[success] %s' %
  1701. _("Done. Apertures copied."))
  1702. class FCEraser(FCShapeTool):
  1703. def __init__(self, draw_app):
  1704. DrawTool.__init__(self, draw_app)
  1705. self.name = 'eraser'
  1706. self.origin = None
  1707. self.destination = None
  1708. self.selected_apertures = []
  1709. if len(self.draw_app.get_selected()) == 0:
  1710. if self.draw_app.launched_from_shortcuts is True:
  1711. self.draw_app.launched_from_shortcuts = False
  1712. self.draw_app.app.inform.emit(_("Select a shape to act as deletion area ..."))
  1713. else:
  1714. self.draw_app.app.inform.emit(_("Click to pick-up the erase shape..."))
  1715. self.current_storage = None
  1716. self.geometry = []
  1717. for index in self.draw_app.apertures_table.selectedIndexes():
  1718. row = index.row()
  1719. # on column 1 in tool tables we hold the aperture codes, and we retrieve them as strings
  1720. aperture_on_row = self.draw_app.apertures_table.item(row, 1).text()
  1721. self.selected_apertures.append(aperture_on_row)
  1722. # Switch notebook to Selected page
  1723. self.draw_app.app.ui.notebook.setCurrentWidget(self.draw_app.app.ui.selected_tab)
  1724. self.sel_limit = self.draw_app.app.defaults["gerber_editor_sel_limit"]
  1725. def set_origin(self, origin):
  1726. self.origin = origin
  1727. def click(self, point):
  1728. if len(self.draw_app.get_selected()) == 0:
  1729. self.draw_app.apertures_table.clearSelection()
  1730. sel_aperture = set()
  1731. for storage in self.draw_app.storage_dict:
  1732. try:
  1733. for geo_el in self.draw_app.storage_dict[storage]['geometry']:
  1734. if 'solid' in geo_el.geo:
  1735. geometric_data = geo_el.geo['solid']
  1736. if Point(point).within(geometric_data):
  1737. self.draw_app.selected = []
  1738. self.draw_app.selected.append(geo_el)
  1739. sel_aperture.add(storage)
  1740. except KeyError:
  1741. pass
  1742. # select the aperture in the Apertures Table that is associated with the selected shape
  1743. try:
  1744. self.draw_app.apertures_table.cellPressed.disconnect()
  1745. except Exception as e:
  1746. log.debug("FlatCAMGrbEditor.FCEraser.click_release() --> %s" % str(e))
  1747. self.draw_app.apertures_table.setSelectionMode(QtWidgets.QAbstractItemView.MultiSelection)
  1748. for aper in sel_aperture:
  1749. for row in range(self.draw_app.apertures_table.rowCount()):
  1750. if str(aper) == self.draw_app.apertures_table.item(row, 1).text():
  1751. self.draw_app.apertures_table.selectRow(row)
  1752. self.draw_app.last_aperture_selected = aper
  1753. self.draw_app.apertures_table.setSelectionMode(QtWidgets.QAbstractItemView.ExtendedSelection)
  1754. self.draw_app.apertures_table.cellPressed.connect(self.draw_app.on_row_selected)
  1755. if len(self.draw_app.get_selected()) == 0:
  1756. return "Nothing to ersase."
  1757. if self.origin is None:
  1758. self.set_origin(point)
  1759. self.draw_app.app.inform.emit(_("Click to erase ..."))
  1760. return
  1761. else:
  1762. self.destination = point
  1763. self.make()
  1764. # self.draw_app.select_tool("select")
  1765. return
  1766. def make(self):
  1767. eraser_sel_shapes = []
  1768. # create the eraser shape from selection
  1769. for eraser_shape in self.utility_geometry(data=self.destination).geo:
  1770. temp_shape = eraser_shape['solid'].buffer(0.0000001)
  1771. temp_shape = Polygon(temp_shape.exterior)
  1772. eraser_sel_shapes.append(temp_shape)
  1773. eraser_sel_shapes = cascaded_union(eraser_sel_shapes)
  1774. for storage in self.draw_app.storage_dict:
  1775. try:
  1776. for geo_el in self.draw_app.storage_dict[storage]['geometry']:
  1777. if 'solid' in geo_el.geo:
  1778. geometric_data = geo_el.geo['solid']
  1779. if eraser_sel_shapes.within(geometric_data) or eraser_sel_shapes.intersects(geometric_data):
  1780. geos = geometric_data.difference(eraser_sel_shapes)
  1781. geos = geos.buffer(0)
  1782. geo_el.geo['solid'] = deepcopy(geos)
  1783. except KeyError:
  1784. pass
  1785. self.draw_app.delete_utility_geometry()
  1786. self.draw_app.plot_all()
  1787. self.draw_app.app.inform.emit('[success] %s' %
  1788. _("Done. Eraser tool action completed."))
  1789. def clean_up(self):
  1790. self.draw_app.selected = []
  1791. self.draw_app.apertures_table.clearSelection()
  1792. self.draw_app.plot_all()
  1793. def utility_geometry(self, data=None):
  1794. """
  1795. Temporary geometry on screen while using this tool.
  1796. :param data:
  1797. :return:
  1798. """
  1799. geo_list = []
  1800. if self.origin is None:
  1801. return None
  1802. if len(self.draw_app.get_selected()) == 0:
  1803. return None
  1804. dx = data[0] - self.origin[0]
  1805. dy = data[1] - self.origin[1]
  1806. for geom in self.draw_app.get_selected():
  1807. new_geo_el = dict()
  1808. if 'solid' in geom.geo:
  1809. new_geo_el['solid'] = affinity.translate(geom.geo['solid'], xoff=dx, yoff=dy)
  1810. if 'follow' in geom.geo:
  1811. new_geo_el['follow'] = affinity.translate(geom.geo['follow'], xoff=dx, yoff=dy)
  1812. if 'clear' in geom.geo:
  1813. new_geo_el['clear'] = affinity.translate(geom.geo['clear'], xoff=dx, yoff=dy)
  1814. geo_list.append(deepcopy(new_geo_el))
  1815. return DrawToolUtilityShape(geo_list)
  1816. class FCApertureSelect(DrawTool):
  1817. def __init__(self, grb_editor_app):
  1818. DrawTool.__init__(self, grb_editor_app)
  1819. self.name = 'select'
  1820. self.origin = None
  1821. self.grb_editor_app = grb_editor_app
  1822. self.storage = self.grb_editor_app.storage_dict
  1823. # self.selected = self.grb_editor_app.selected
  1824. # here we store all shapes that were selected
  1825. self.sel_storage = []
  1826. # since FCApertureSelect tool is activated whenever a tool is exited I place here the reinitialization of the
  1827. # bending modes using in FCRegion and FCTrack
  1828. self.draw_app.bend_mode = 1
  1829. # here store the selected apertures
  1830. self.sel_aperture = set()
  1831. try:
  1832. self.grb_editor_app.apertures_table.clearSelection()
  1833. except Exception as e:
  1834. log.error("FlatCAMGerbEditor.FCApertureSelect.__init__() --> %s" % str(e))
  1835. self.grb_editor_app.hide_tool('all')
  1836. self.grb_editor_app.hide_tool('select')
  1837. self.grb_editor_app.array_frame.hide()
  1838. try:
  1839. QtGui.QGuiApplication.restoreOverrideCursor()
  1840. except Exception as e:
  1841. log.debug("FlatCAMGrbEditor.FCApertureSelect --> %s" % str(e))
  1842. def set_origin(self, origin):
  1843. self.origin = origin
  1844. def click(self, point):
  1845. key_modifier = QtWidgets.QApplication.keyboardModifiers()
  1846. if key_modifier == QtCore.Qt.ShiftModifier:
  1847. mod_key = 'Shift'
  1848. elif key_modifier == QtCore.Qt.ControlModifier:
  1849. mod_key = 'Control'
  1850. else:
  1851. mod_key = None
  1852. if mod_key == self.draw_app.app.defaults["global_mselect_key"]:
  1853. pass
  1854. else:
  1855. self.grb_editor_app.selected = []
  1856. def click_release(self, point):
  1857. self.grb_editor_app.apertures_table.clearSelection()
  1858. key_modifier = QtWidgets.QApplication.keyboardModifiers()
  1859. if key_modifier == QtCore.Qt.ShiftModifier:
  1860. mod_key = 'Shift'
  1861. elif key_modifier == QtCore.Qt.ControlModifier:
  1862. mod_key = 'Control'
  1863. else:
  1864. mod_key = None
  1865. for storage in self.grb_editor_app.storage_dict:
  1866. try:
  1867. for geo_el in self.grb_editor_app.storage_dict[storage]['geometry']:
  1868. if 'solid' in geo_el.geo:
  1869. geometric_data = geo_el.geo['solid']
  1870. if Point(point).within(geometric_data):
  1871. if mod_key == self.grb_editor_app.app.defaults["global_mselect_key"]:
  1872. if geo_el in self.draw_app.selected:
  1873. self.draw_app.selected.remove(geo_el)
  1874. self.sel_aperture.remove(storage)
  1875. else:
  1876. # add the object to the selected shapes
  1877. self.draw_app.selected.append(geo_el)
  1878. self.sel_aperture.add(storage)
  1879. else:
  1880. self.draw_app.selected.append(geo_el)
  1881. self.sel_aperture.add(storage)
  1882. except KeyError:
  1883. pass
  1884. # select the aperture in the Apertures Table that is associated with the selected shape
  1885. try:
  1886. self.draw_app.apertures_table.cellPressed.disconnect()
  1887. except Exception as e:
  1888. log.debug("FlatCAMGrbEditor.FCApertureSelect.click_release() --> %s" % str(e))
  1889. self.grb_editor_app.apertures_table.setSelectionMode(QtWidgets.QAbstractItemView.MultiSelection)
  1890. for aper in self.sel_aperture:
  1891. for row in range(self.grb_editor_app.apertures_table.rowCount()):
  1892. if str(aper) == self.grb_editor_app.apertures_table.item(row, 1).text():
  1893. self.grb_editor_app.apertures_table.selectRow(row)
  1894. self.draw_app.last_aperture_selected = aper
  1895. self.grb_editor_app.apertures_table.setSelectionMode(QtWidgets.QAbstractItemView.ExtendedSelection)
  1896. self.draw_app.apertures_table.cellPressed.connect(self.draw_app.on_row_selected)
  1897. return ""
  1898. def clean_up(self):
  1899. self.draw_app.plot_all()
  1900. class FCTransform(FCShapeTool):
  1901. def __init__(self, draw_app):
  1902. FCShapeTool.__init__(self, draw_app)
  1903. self.name = 'transformation'
  1904. # self.shape_buffer = self.draw_app.shape_buffer
  1905. self.draw_app = draw_app
  1906. self.app = draw_app.app
  1907. self.start_msg = _("Shape transformations ...")
  1908. self.origin = (0, 0)
  1909. self.draw_app.transform_tool.run()
  1910. def clean_up(self):
  1911. self.draw_app.selected = []
  1912. self.draw_app.apertures_table.clearSelection()
  1913. self.draw_app.plot_all()
  1914. class FlatCAMGrbEditor(QtCore.QObject):
  1915. draw_shape_idx = -1
  1916. # plot_finished = QtCore.pyqtSignal()
  1917. mp_finished = QtCore.pyqtSignal(list)
  1918. def __init__(self, app):
  1919. assert isinstance(app, FlatCAMApp.App), \
  1920. "Expected the app to be a FlatCAMApp.App, got %s" % type(app)
  1921. super(FlatCAMGrbEditor, self).__init__()
  1922. self.app = app
  1923. self.canvas = self.app.plotcanvas
  1924. self.decimals = self.app.decimals
  1925. # Current application units in Upper Case
  1926. self.units = self.app.defaults['units'].upper()
  1927. self.grb_edit_widget = QtWidgets.QWidget()
  1928. layout = QtWidgets.QVBoxLayout()
  1929. self.grb_edit_widget.setLayout(layout)
  1930. # Page Title box (spacing between children)
  1931. self.title_box = QtWidgets.QHBoxLayout()
  1932. layout.addLayout(self.title_box)
  1933. # Page Title icon
  1934. pixmap = QtGui.QPixmap('share/flatcam_icon32.png')
  1935. self.icon = QtWidgets.QLabel()
  1936. self.icon.setPixmap(pixmap)
  1937. self.title_box.addWidget(self.icon, stretch=0)
  1938. # Title label
  1939. self.title_label = QtWidgets.QLabel("<font size=5><b>%s</b></font>" % _('Gerber Editor'))
  1940. self.title_label.setAlignment(QtCore.Qt.AlignLeft | QtCore.Qt.AlignVCenter)
  1941. self.title_box.addWidget(self.title_label, stretch=1)
  1942. # Object name
  1943. self.name_box = QtWidgets.QHBoxLayout()
  1944. layout.addLayout(self.name_box)
  1945. name_label = QtWidgets.QLabel(_("Name:"))
  1946. self.name_box.addWidget(name_label)
  1947. self.name_entry = FCEntry()
  1948. self.name_box.addWidget(self.name_entry)
  1949. # Box for custom widgets
  1950. # This gets populated in offspring implementations.
  1951. self.custom_box = QtWidgets.QVBoxLayout()
  1952. layout.addLayout(self.custom_box)
  1953. # #########################
  1954. # ### Gerber Apertures ####
  1955. # #########################
  1956. self.apertures_table_label = QtWidgets.QLabel('<b>%s:</b>' % _('Apertures'))
  1957. self.apertures_table_label.setToolTip(
  1958. _("Apertures Table for the Gerber Object.")
  1959. )
  1960. self.custom_box.addWidget(self.apertures_table_label)
  1961. self.apertures_table = FCTable()
  1962. # delegate = SpinBoxDelegate(units=self.units)
  1963. # self.apertures_table.setItemDelegateForColumn(1, delegate)
  1964. self.custom_box.addWidget(self.apertures_table)
  1965. self.apertures_table.setColumnCount(5)
  1966. self.apertures_table.setHorizontalHeaderLabels(['#', _('Code'), _('Type'), _('Size'), _('Dim')])
  1967. self.apertures_table.setSortingEnabled(False)
  1968. self.apertures_table.horizontalHeaderItem(0).setToolTip(
  1969. _("Index"))
  1970. self.apertures_table.horizontalHeaderItem(1).setToolTip(
  1971. _("Aperture Code"))
  1972. self.apertures_table.horizontalHeaderItem(2).setToolTip(
  1973. _("Type of aperture: circular, rectangle, macros etc"))
  1974. self.apertures_table.horizontalHeaderItem(4).setToolTip(
  1975. _("Aperture Size:"))
  1976. self.apertures_table.horizontalHeaderItem(4).setToolTip(
  1977. _("Aperture Dimensions:\n"
  1978. " - (width, height) for R, O type.\n"
  1979. " - (dia, nVertices) for P type"))
  1980. self.empty_label = QtWidgets.QLabel('')
  1981. self.custom_box.addWidget(self.empty_label)
  1982. # add a frame and inside add a vertical box layout. Inside this vbox layout I add all the Apertures widgets
  1983. # this way I can hide/show the frame
  1984. self.apertures_frame = QtWidgets.QFrame()
  1985. self.apertures_frame.setContentsMargins(0, 0, 0, 0)
  1986. self.custom_box.addWidget(self.apertures_frame)
  1987. self.apertures_box = QtWidgets.QVBoxLayout()
  1988. self.apertures_box.setContentsMargins(0, 0, 0, 0)
  1989. self.apertures_frame.setLayout(self.apertures_box)
  1990. # # ## Add/Delete an new Aperture ## ##
  1991. grid1 = QtWidgets.QGridLayout()
  1992. self.apertures_box.addLayout(grid1)
  1993. grid1.setColumnStretch(0, 0)
  1994. grid1.setColumnStretch(1, 1)
  1995. apcode_lbl = QtWidgets.QLabel('%s:' % _('Aperture Code'))
  1996. apcode_lbl.setToolTip(_("Code for the new aperture"))
  1997. grid1.addWidget(apcode_lbl, 1, 0)
  1998. self.apcode_entry = FCSpinner()
  1999. self.apcode_entry.set_range(0, 999)
  2000. self.apcode_entry.setWrapping(True)
  2001. grid1.addWidget(self.apcode_entry, 1, 1)
  2002. apsize_lbl = QtWidgets.QLabel('%s:' % _('Aperture Size'))
  2003. apsize_lbl.setToolTip(
  2004. _("Size for the new aperture.\n"
  2005. "If aperture type is 'R' or 'O' then\n"
  2006. "this value is automatically\n"
  2007. "calculated as:\n"
  2008. "sqrt(width**2 + height**2)")
  2009. )
  2010. grid1.addWidget(apsize_lbl, 2, 0)
  2011. self.apsize_entry = FCDoubleSpinner()
  2012. self.apsize_entry.set_precision(self.decimals)
  2013. self.apsize_entry.set_range(0.0, 9999)
  2014. grid1.addWidget(self.apsize_entry, 2, 1)
  2015. aptype_lbl = QtWidgets.QLabel('%s:' % _('Aperture Type'))
  2016. aptype_lbl.setToolTip(
  2017. _("Select the type of new aperture. Can be:\n"
  2018. "C = circular\n"
  2019. "R = rectangular\n"
  2020. "O = oblong")
  2021. )
  2022. grid1.addWidget(aptype_lbl, 3, 0)
  2023. self.aptype_cb = FCComboBox()
  2024. self.aptype_cb.addItems(['C', 'R', 'O'])
  2025. grid1.addWidget(self.aptype_cb, 3, 1)
  2026. self.apdim_lbl = QtWidgets.QLabel('%s:' % _('Aperture Dim'))
  2027. self.apdim_lbl.setToolTip(
  2028. _("Dimensions for the new aperture.\n"
  2029. "Active only for rectangular apertures (type R).\n"
  2030. "The format is (width, height)")
  2031. )
  2032. grid1.addWidget(self.apdim_lbl, 4, 0)
  2033. self.apdim_entry = EvalEntry2()
  2034. grid1.addWidget(self.apdim_entry, 4, 1)
  2035. apadd_del_lbl = QtWidgets.QLabel('<b>%s:</b>' % _('Add/Delete Aperture'))
  2036. apadd_del_lbl.setToolTip(
  2037. _("Add/Delete an aperture in the aperture table")
  2038. )
  2039. self.apertures_box.addWidget(apadd_del_lbl)
  2040. hlay_ad = QtWidgets.QHBoxLayout()
  2041. self.apertures_box.addLayout(hlay_ad)
  2042. self.addaperture_btn = QtWidgets.QPushButton(_('Add'))
  2043. self.addaperture_btn.setToolTip(
  2044. _("Add a new aperture to the aperture list.")
  2045. )
  2046. self.delaperture_btn = QtWidgets.QPushButton(_('Delete'))
  2047. self.delaperture_btn.setToolTip(
  2048. _("Delete a aperture in the aperture list")
  2049. )
  2050. hlay_ad.addWidget(self.addaperture_btn)
  2051. hlay_ad.addWidget(self.delaperture_btn)
  2052. # ###################
  2053. # ### BUFFER TOOL ###
  2054. # ###################
  2055. self.buffer_tool_frame = QtWidgets.QFrame()
  2056. self.buffer_tool_frame.setContentsMargins(0, 0, 0, 0)
  2057. self.custom_box.addWidget(self.buffer_tool_frame)
  2058. self.buffer_tools_box = QtWidgets.QVBoxLayout()
  2059. self.buffer_tools_box.setContentsMargins(0, 0, 0, 0)
  2060. self.buffer_tool_frame.setLayout(self.buffer_tools_box)
  2061. self.buffer_tool_frame.hide()
  2062. # Title
  2063. buf_title_lbl = QtWidgets.QLabel('<b>%s:</b>' % _('Buffer Aperture'))
  2064. buf_title_lbl.setToolTip(
  2065. _("Buffer a aperture in the aperture list")
  2066. )
  2067. self.buffer_tools_box.addWidget(buf_title_lbl)
  2068. # Form Layout
  2069. buf_form_layout = QtWidgets.QFormLayout()
  2070. self.buffer_tools_box.addLayout(buf_form_layout)
  2071. # Buffer distance
  2072. self.buffer_distance_entry = FCDoubleSpinner()
  2073. self.buffer_distance_entry.set_precision(self.decimals)
  2074. self.buffer_distance_entry.set_range(-9999.9999, 9999.9999)
  2075. buf_form_layout.addRow('%s:' % _("Buffer distance"), self.buffer_distance_entry)
  2076. self.buffer_corner_lbl = QtWidgets.QLabel('%s:' % _("Buffer corner"))
  2077. self.buffer_corner_lbl.setToolTip(
  2078. _("There are 3 types of corners:\n"
  2079. " - 'Round': the corner is rounded.\n"
  2080. " - 'Square:' the corner is met in a sharp angle.\n"
  2081. " - 'Beveled:' the corner is a line that directly connects the features meeting in the corner")
  2082. )
  2083. self.buffer_corner_cb = FCComboBox()
  2084. self.buffer_corner_cb.addItem(_("Round"))
  2085. self.buffer_corner_cb.addItem(_("Square"))
  2086. self.buffer_corner_cb.addItem(_("Beveled"))
  2087. buf_form_layout.addRow(self.buffer_corner_lbl, self.buffer_corner_cb)
  2088. # Buttons
  2089. hlay_buf = QtWidgets.QHBoxLayout()
  2090. self.buffer_tools_box.addLayout(hlay_buf)
  2091. self.buffer_button = QtWidgets.QPushButton(_("Buffer"))
  2092. hlay_buf.addWidget(self.buffer_button)
  2093. # ##################
  2094. # ### SCALE TOOL ###
  2095. # ##################
  2096. self.scale_tool_frame = QtWidgets.QFrame()
  2097. self.scale_tool_frame.setContentsMargins(0, 0, 0, 0)
  2098. self.custom_box.addWidget(self.scale_tool_frame)
  2099. self.scale_tools_box = QtWidgets.QVBoxLayout()
  2100. self.scale_tools_box.setContentsMargins(0, 0, 0, 0)
  2101. self.scale_tool_frame.setLayout(self.scale_tools_box)
  2102. self.scale_tool_frame.hide()
  2103. # Title
  2104. scale_title_lbl = QtWidgets.QLabel('<b>%s:</b>' % _('Scale Aperture'))
  2105. scale_title_lbl.setToolTip(
  2106. _("Scale a aperture in the aperture list")
  2107. )
  2108. self.scale_tools_box.addWidget(scale_title_lbl)
  2109. # Form Layout
  2110. scale_form_layout = QtWidgets.QFormLayout()
  2111. self.scale_tools_box.addLayout(scale_form_layout)
  2112. self.scale_factor_lbl = QtWidgets.QLabel('%s:' % _("Scale factor"))
  2113. self.scale_factor_lbl.setToolTip(
  2114. _("The factor by which to scale the selected aperture.\n"
  2115. "Values can be between 0.0000 and 999.9999")
  2116. )
  2117. self.scale_factor_entry = FCDoubleSpinner()
  2118. self.scale_factor_entry.set_precision(self.decimals)
  2119. self.scale_factor_entry.set_range(0.0000, 9999.9999)
  2120. scale_form_layout.addRow(self.scale_factor_lbl, self.scale_factor_entry)
  2121. # Buttons
  2122. hlay_scale = QtWidgets.QHBoxLayout()
  2123. self.scale_tools_box.addLayout(hlay_scale)
  2124. self.scale_button = QtWidgets.QPushButton(_("Scale"))
  2125. hlay_scale.addWidget(self.scale_button)
  2126. # ######################
  2127. # ### Mark Area TOOL ###
  2128. # ######################
  2129. self.ma_tool_frame = QtWidgets.QFrame()
  2130. self.ma_tool_frame.setContentsMargins(0, 0, 0, 0)
  2131. self.custom_box.addWidget(self.ma_tool_frame)
  2132. self.ma_tools_box = QtWidgets.QVBoxLayout()
  2133. self.ma_tools_box.setContentsMargins(0, 0, 0, 0)
  2134. self.ma_tool_frame.setLayout(self.ma_tools_box)
  2135. self.ma_tool_frame.hide()
  2136. # Title
  2137. ma_title_lbl = QtWidgets.QLabel('<b>%s:</b>' % _('Mark polygons'))
  2138. ma_title_lbl.setToolTip(
  2139. _("Mark the polygon areas.")
  2140. )
  2141. self.ma_tools_box.addWidget(ma_title_lbl)
  2142. # Form Layout
  2143. ma_form_layout = QtWidgets.QFormLayout()
  2144. self.ma_tools_box.addLayout(ma_form_layout)
  2145. self.ma_upper_threshold_lbl = QtWidgets.QLabel('%s:' % _("Area UPPER threshold"))
  2146. self.ma_upper_threshold_lbl.setToolTip(
  2147. _("The threshold value, all areas less than this are marked.\n"
  2148. "Can have a value between 0.0000 and 9999.9999")
  2149. )
  2150. self.ma_upper_threshold_entry = FCDoubleSpinner()
  2151. self.ma_upper_threshold_entry.set_precision(self.decimals)
  2152. self.ma_upper_threshold_entry.set_range(0, 10000)
  2153. self.ma_lower_threshold_lbl = QtWidgets.QLabel('%s:' % _("Area LOWER threshold"))
  2154. self.ma_lower_threshold_lbl.setToolTip(
  2155. _("The threshold value, all areas more than this are marked.\n"
  2156. "Can have a value between 0.0000 and 9999.9999")
  2157. )
  2158. self.ma_lower_threshold_entry = FCDoubleSpinner()
  2159. self.ma_lower_threshold_entry.set_precision(self.decimals)
  2160. self.ma_lower_threshold_entry.set_range(0, 10000)
  2161. ma_form_layout.addRow(self.ma_lower_threshold_lbl, self.ma_lower_threshold_entry)
  2162. ma_form_layout.addRow(self.ma_upper_threshold_lbl, self.ma_upper_threshold_entry)
  2163. # Buttons
  2164. hlay_ma = QtWidgets.QHBoxLayout()
  2165. self.ma_tools_box.addLayout(hlay_ma)
  2166. self.ma_threshold_button = QtWidgets.QPushButton(_("Mark"))
  2167. self.ma_threshold_button.setToolTip(
  2168. _("Mark the polygons that fit within limits.")
  2169. )
  2170. hlay_ma.addWidget(self.ma_threshold_button)
  2171. self.ma_delete_button = QtWidgets.QPushButton(_("Delete"))
  2172. self.ma_delete_button.setToolTip(
  2173. _("Delete all the marked polygons.")
  2174. )
  2175. hlay_ma.addWidget(self.ma_delete_button)
  2176. self.ma_clear_button = QtWidgets.QPushButton(_("Clear"))
  2177. self.ma_clear_button.setToolTip(
  2178. _("Clear all the markings.")
  2179. )
  2180. hlay_ma.addWidget(self.ma_clear_button)
  2181. # ######################
  2182. # ### Add Pad Array ####
  2183. # ######################
  2184. # add a frame and inside add a vertical box layout. Inside this vbox layout I add
  2185. # all the add Pad array widgets
  2186. # this way I can hide/show the frame
  2187. self.array_frame = QtWidgets.QFrame()
  2188. self.array_frame.setContentsMargins(0, 0, 0, 0)
  2189. self.custom_box.addWidget(self.array_frame)
  2190. self.array_box = QtWidgets.QVBoxLayout()
  2191. self.array_box.setContentsMargins(0, 0, 0, 0)
  2192. self.array_frame.setLayout(self.array_box)
  2193. self.emptyarray_label = QtWidgets.QLabel('')
  2194. self.array_box.addWidget(self.emptyarray_label)
  2195. self.padarray_label = QtWidgets.QLabel('<b>%s</b>' % _("Add Pad Array"))
  2196. self.padarray_label.setToolTip(
  2197. _("Add an array of pads (linear or circular array)")
  2198. )
  2199. self.array_box.addWidget(self.padarray_label)
  2200. self.array_type_combo = FCComboBox()
  2201. self.array_type_combo.setToolTip(
  2202. _("Select the type of pads array to create.\n"
  2203. "It can be Linear X(Y) or Circular")
  2204. )
  2205. self.array_type_combo.addItem(_("Linear"))
  2206. self.array_type_combo.addItem(_("Circular"))
  2207. self.array_box.addWidget(self.array_type_combo)
  2208. self.array_form = QtWidgets.QFormLayout()
  2209. self.array_box.addLayout(self.array_form)
  2210. self.pad_array_size_label = QtWidgets.QLabel('%s:' % _('Nr of pads'))
  2211. self.pad_array_size_label.setToolTip(
  2212. _("Specify how many pads to be in the array.")
  2213. )
  2214. self.pad_array_size_label.setMinimumWidth(100)
  2215. self.pad_array_size_entry = FCSpinner()
  2216. self.pad_array_size_entry.set_range(1, 9999)
  2217. self.array_form.addRow(self.pad_array_size_label, self.pad_array_size_entry)
  2218. self.array_linear_frame = QtWidgets.QFrame()
  2219. self.array_linear_frame.setContentsMargins(0, 0, 0, 0)
  2220. self.array_box.addWidget(self.array_linear_frame)
  2221. self.linear_box = QtWidgets.QVBoxLayout()
  2222. self.linear_box.setContentsMargins(0, 0, 0, 0)
  2223. self.array_linear_frame.setLayout(self.linear_box)
  2224. self.linear_form = QtWidgets.QFormLayout()
  2225. self.linear_box.addLayout(self.linear_form)
  2226. self.pad_axis_label = QtWidgets.QLabel('%s:' % _('Direction'))
  2227. self.pad_axis_label.setToolTip(
  2228. _("Direction on which the linear array is oriented:\n"
  2229. "- 'X' - horizontal axis \n"
  2230. "- 'Y' - vertical axis or \n"
  2231. "- 'Angle' - a custom angle for the array inclination")
  2232. )
  2233. self.pad_axis_label.setMinimumWidth(100)
  2234. self.pad_axis_radio = RadioSet([{'label': _('X'), 'value': 'X'},
  2235. {'label': _('Y'), 'value': 'Y'},
  2236. {'label': _('Angle'), 'value': 'A'}])
  2237. self.pad_axis_radio.set_value('X')
  2238. self.linear_form.addRow(self.pad_axis_label, self.pad_axis_radio)
  2239. self.pad_pitch_label = QtWidgets.QLabel('%s:' % _('Pitch'))
  2240. self.pad_pitch_label.setToolTip(
  2241. _("Pitch = Distance between elements of the array.")
  2242. )
  2243. self.pad_pitch_label.setMinimumWidth(100)
  2244. self.pad_pitch_entry = FCDoubleSpinner()
  2245. self.pad_pitch_entry.set_precision(self.decimals)
  2246. self.pad_pitch_entry.set_range(0.0000, 9999.9999)
  2247. self.pad_pitch_entry.setSingleStep(0.1)
  2248. self.linear_form.addRow(self.pad_pitch_label, self.pad_pitch_entry)
  2249. self.linear_angle_label = QtWidgets.QLabel('%s:' % _('Angle'))
  2250. self.linear_angle_label.setToolTip(
  2251. _("Angle at which the linear array is placed.\n"
  2252. "The precision is of max 2 decimals.\n"
  2253. "Min value is: -359.99 degrees.\n"
  2254. "Max value is: 360.00 degrees.")
  2255. )
  2256. self.linear_angle_label.setMinimumWidth(100)
  2257. self.linear_angle_spinner = FCDoubleSpinner()
  2258. self.linear_angle_spinner.set_precision(self.decimals)
  2259. self.linear_angle_spinner.setRange(-360.00, 360.00)
  2260. self.linear_form.addRow(self.linear_angle_label, self.linear_angle_spinner)
  2261. self.array_circular_frame = QtWidgets.QFrame()
  2262. self.array_circular_frame.setContentsMargins(0, 0, 0, 0)
  2263. self.array_box.addWidget(self.array_circular_frame)
  2264. self.circular_box = QtWidgets.QVBoxLayout()
  2265. self.circular_box.setContentsMargins(0, 0, 0, 0)
  2266. self.array_circular_frame.setLayout(self.circular_box)
  2267. self.pad_direction_label = QtWidgets.QLabel('%s:' % _('Direction'))
  2268. self.pad_direction_label.setToolTip(
  2269. _("Direction for circular array."
  2270. "Can be CW = clockwise or CCW = counter clockwise.")
  2271. )
  2272. self.pad_direction_label.setMinimumWidth(100)
  2273. self.circular_form = QtWidgets.QFormLayout()
  2274. self.circular_box.addLayout(self.circular_form)
  2275. self.pad_direction_radio = RadioSet([{'label': _('CW'), 'value': 'CW'},
  2276. {'label': _('CCW'), 'value': 'CCW'}])
  2277. self.pad_direction_radio.set_value('CW')
  2278. self.circular_form.addRow(self.pad_direction_label, self.pad_direction_radio)
  2279. self.pad_angle_label = QtWidgets.QLabel('%s:' % _('Angle'))
  2280. self.pad_angle_label.setToolTip(
  2281. _("Angle at which each element in circular array is placed.")
  2282. )
  2283. self.pad_angle_label.setMinimumWidth(100)
  2284. self.pad_angle_entry = FCDoubleSpinner()
  2285. self.pad_angle_entry.set_precision(self.decimals)
  2286. self.pad_angle_entry.set_range(-360.00, 360.00)
  2287. self.pad_angle_entry.setSingleStep(0.1)
  2288. self.circular_form.addRow(self.pad_angle_label, self.pad_angle_entry)
  2289. self.array_circular_frame.hide()
  2290. self.linear_angle_spinner.hide()
  2291. self.linear_angle_label.hide()
  2292. self.array_frame.hide()
  2293. self.custom_box.addStretch()
  2294. # Toolbar events and properties
  2295. self.tools_gerber = {
  2296. "select": {"button": self.app.ui.grb_select_btn,
  2297. "constructor": FCApertureSelect},
  2298. "pad": {"button": self.app.ui.grb_add_pad_btn,
  2299. "constructor": FCPad},
  2300. "array": {"button": self.app.ui.add_pad_ar_btn,
  2301. "constructor": FCPadArray},
  2302. "track": {"button": self.app.ui.grb_add_track_btn,
  2303. "constructor": FCTrack},
  2304. "region": {"button": self.app.ui.grb_add_region_btn,
  2305. "constructor": FCRegion},
  2306. "poligonize": {"button": self.app.ui.grb_convert_poly_btn,
  2307. "constructor": FCPoligonize},
  2308. "semidisc": {"button": self.app.ui.grb_add_semidisc_btn,
  2309. "constructor": FCSemiDisc},
  2310. "disc": {"button": self.app.ui.grb_add_disc_btn,
  2311. "constructor": FCDisc},
  2312. "buffer": {"button": self.app.ui.aperture_buffer_btn,
  2313. "constructor": FCBuffer},
  2314. "scale": {"button": self.app.ui.aperture_scale_btn,
  2315. "constructor": FCScale},
  2316. "markarea": {"button": self.app.ui.aperture_markarea_btn,
  2317. "constructor": FCMarkArea},
  2318. "eraser": {"button": self.app.ui.aperture_eraser_btn,
  2319. "constructor": FCEraser},
  2320. "copy": {"button": self.app.ui.aperture_copy_btn,
  2321. "constructor": FCApertureCopy},
  2322. "transform": {"button": self.app.ui.grb_transform_btn,
  2323. "constructor": FCTransform},
  2324. "move": {"button": self.app.ui.aperture_move_btn,
  2325. "constructor": FCApertureMove},
  2326. }
  2327. # # ## Data
  2328. self.active_tool = None
  2329. self.storage_dict = dict()
  2330. self.current_storage = list()
  2331. self.sorted_apid = list()
  2332. self.new_apertures = dict()
  2333. self.new_aperture_macros = dict()
  2334. # store here the plot promises, if empty the delayed plot will be activated
  2335. self.grb_plot_promises = list()
  2336. # dictionary to store the tool_row and aperture codes in Tool_table
  2337. # it will be updated everytime self.build_ui() is called
  2338. self.olddia_newdia = dict()
  2339. self.tool2tooldia = dict()
  2340. # this will store the value for the last selected tool, for use after clicking on canvas when the selection
  2341. # is cleared but as a side effect also the selected tool is cleared
  2342. self.last_aperture_selected = None
  2343. self.utility = list()
  2344. # this will store the polygons marked by mark are to be perhaps deleted
  2345. self.geo_to_delete = list()
  2346. # this will flag if the Editor "tools" are launched from key shortcuts (True) or from menu toolbar (False)
  2347. self.launched_from_shortcuts = False
  2348. # this var will store the state of the toolbar before starting the editor
  2349. self.toolbar_old_state = False
  2350. # Init GUI
  2351. self.apdim_lbl.hide()
  2352. self.apdim_entry.hide()
  2353. self.gerber_obj = None
  2354. self.gerber_obj_options = dict()
  2355. # VisPy Visuals
  2356. if self.app.is_legacy is False:
  2357. self.shapes = self.canvas.new_shape_collection(layers=1)
  2358. self.tool_shape = self.canvas.new_shape_collection(layers=1)
  2359. self.ma_annotation = self.canvas.new_text_group()
  2360. else:
  2361. from flatcamGUI.PlotCanvasLegacy import ShapeCollectionLegacy
  2362. self.shapes = ShapeCollectionLegacy(obj=self, app=self.app, name='shapes_grb_editor')
  2363. self.tool_shape = ShapeCollectionLegacy(obj=self, app=self.app, name='tool_shapes_grb_editor')
  2364. self.ma_annotation = ShapeCollectionLegacy(
  2365. obj=self,
  2366. app=self.app,
  2367. name='ma_anno_grb_editor',
  2368. annotation_job=True)
  2369. self.app.pool_recreated.connect(self.pool_recreated)
  2370. # Event signals disconnect id holders
  2371. self.mp = None
  2372. self.mm = None
  2373. self.mr = None
  2374. # Remove from scene
  2375. self.shapes.enabled = False
  2376. self.tool_shape.enabled = False
  2377. # List of selected geometric elements.
  2378. self.selected = []
  2379. self.key = None # Currently pressed key
  2380. self.modifiers = None
  2381. self.x = None # Current mouse cursor pos
  2382. self.y = None
  2383. # Current snapped mouse pos
  2384. self.snap_x = None
  2385. self.snap_y = None
  2386. self.pos = None
  2387. # used in FCRegion and FCTrack. Will store the bending mode
  2388. self.bend_mode = 1
  2389. # signal that there is an action active like polygon or path
  2390. self.in_action = False
  2391. # this will flag if the Editor "tools" are launched from key shortcuts (True) or from menu toolbar (False)
  2392. self.launched_from_shortcuts = False
  2393. def_tol_val = float(self.app.defaults["global_tolerance"])
  2394. self.tolerance = def_tol_val if self.units == 'MM'else def_tol_val / 20
  2395. def make_callback(the_tool):
  2396. def f():
  2397. self.on_tool_select(the_tool)
  2398. return f
  2399. for tool in self.tools_gerber:
  2400. self.tools_gerber[tool]["button"].triggered.connect(make_callback(tool)) # Events
  2401. self.tools_gerber[tool]["button"].setCheckable(True)
  2402. self.options = {
  2403. "global_gridx": 0.1,
  2404. "global_gridy": 0.1,
  2405. "snap_max": 0.05,
  2406. "grid_snap": True,
  2407. "corner_snap": False,
  2408. "grid_gap_link": True
  2409. }
  2410. self.options.update(self.app.options)
  2411. for option in self.options:
  2412. if option in self.app.options:
  2413. self.options[option] = self.app.options[option]
  2414. # flag to show if the object was modified
  2415. self.is_modified = False
  2416. self.edited_obj_name = ""
  2417. self.tool_row = 0
  2418. # Multiprocessing pool
  2419. self.pool = self.app.pool
  2420. # Multiprocessing results
  2421. self.results = list()
  2422. # A QTimer
  2423. self.plot_thread = None
  2424. # store the status of the editor so the Delete at object level will not work until the edit is finished
  2425. self.editor_active = False
  2426. # def entry2option(option, entry):
  2427. # self.options[option] = float(entry.text())
  2428. self.transform_tool = TransformEditorTool(self.app, self)
  2429. # Signals
  2430. self.buffer_button.clicked.connect(self.on_buffer)
  2431. self.scale_button.clicked.connect(self.on_scale)
  2432. self.app.ui.aperture_delete_btn.triggered.connect(self.on_delete_btn)
  2433. self.name_entry.returnPressed.connect(self.on_name_activate)
  2434. self.aptype_cb.currentIndexChanged[str].connect(self.on_aptype_changed)
  2435. self.addaperture_btn.clicked.connect(self.on_aperture_add)
  2436. self.apsize_entry.returnPressed.connect(self.on_aperture_add)
  2437. self.apdim_entry.returnPressed.connect(self.on_aperture_add)
  2438. self.delaperture_btn.clicked.connect(self.on_aperture_delete)
  2439. self.apertures_table.cellPressed.connect(self.on_row_selected)
  2440. self.app.ui.grb_add_pad_menuitem.triggered.connect(self.on_pad_add)
  2441. self.app.ui.grb_add_pad_array_menuitem.triggered.connect(self.on_pad_add_array)
  2442. self.app.ui.grb_add_track_menuitem.triggered.connect(self.on_track_add)
  2443. self.app.ui.grb_add_region_menuitem.triggered.connect(self.on_region_add)
  2444. self.app.ui.grb_convert_poly_menuitem.triggered.connect(self.on_poligonize)
  2445. self.app.ui.grb_add_semidisc_menuitem.triggered.connect(self.on_add_semidisc)
  2446. self.app.ui.grb_add_disc_menuitem.triggered.connect(self.on_disc_add)
  2447. self.app.ui.grb_add_buffer_menuitem.triggered.connect(self.on_buffer)
  2448. self.app.ui.grb_add_scale_menuitem.triggered.connect(self.on_scale)
  2449. self.app.ui.grb_add_eraser_menuitem.triggered.connect(self.on_eraser)
  2450. self.app.ui.grb_add_markarea_menuitem.triggered.connect(self.on_markarea)
  2451. self.app.ui.grb_transform_menuitem.triggered.connect(self.transform_tool.run)
  2452. self.app.ui.grb_copy_menuitem.triggered.connect(self.on_copy_button)
  2453. self.app.ui.grb_delete_menuitem.triggered.connect(self.on_delete_btn)
  2454. self.app.ui.grb_move_menuitem.triggered.connect(self.on_move_button)
  2455. self.array_type_combo.currentIndexChanged.connect(self.on_array_type_combo)
  2456. self.pad_axis_radio.activated_custom.connect(self.on_linear_angle_radio)
  2457. self.mp_finished.connect(self.on_multiprocessing_finished)
  2458. # store the status of the editor so the Delete at object level will not work until the edit is finished
  2459. self.editor_active = False
  2460. self.conversion_factor = 1
  2461. self.set_ui()
  2462. log.debug("Initialization of the FlatCAM Gerber Editor is finished ...")
  2463. def pool_recreated(self, pool):
  2464. self.shapes.pool = pool
  2465. self.tool_shape.pool = pool
  2466. def set_ui(self):
  2467. # updated units
  2468. self.units = self.app.defaults['units'].upper()
  2469. self.decimals = self.app.decimals
  2470. self.olddia_newdia.clear()
  2471. self.tool2tooldia.clear()
  2472. # update the olddia_newdia dict to make sure we have an updated state of the tool_table
  2473. for key in self.storage_dict:
  2474. self.olddia_newdia[key] = key
  2475. sort_temp = []
  2476. for aperture in self.olddia_newdia:
  2477. sort_temp.append(int(aperture))
  2478. self.sorted_apid = sorted(sort_temp)
  2479. # populate self.intial_table_rows dict with the tool number as keys and aperture codes as values
  2480. for i in range(len(self.sorted_apid)):
  2481. tt_aperture = self.sorted_apid[i]
  2482. self.tool2tooldia[i + 1] = tt_aperture
  2483. # Init GUI
  2484. self.buffer_distance_entry.set_value(self.app.defaults["gerber_editor_buff_f"])
  2485. self.scale_factor_entry.set_value(self.app.defaults["gerber_editor_scale_f"])
  2486. self.ma_upper_threshold_entry.set_value(self.app.defaults["gerber_editor_ma_high"])
  2487. self.ma_lower_threshold_entry.set_value(self.app.defaults["gerber_editor_ma_low"])
  2488. self.apsize_entry.set_value(self.app.defaults["gerber_editor_newsize"])
  2489. self.aptype_cb.set_value(self.app.defaults["gerber_editor_newtype"])
  2490. self.apdim_entry.set_value(self.app.defaults["gerber_editor_newdim"])
  2491. self.pad_array_size_entry.set_value(int(self.app.defaults["gerber_editor_array_size"]))
  2492. # linear array
  2493. self.pad_axis_radio.set_value(self.app.defaults["gerber_editor_lin_axis"])
  2494. self.pad_pitch_entry.set_value(float(self.app.defaults["gerber_editor_lin_pitch"]))
  2495. self.linear_angle_spinner.set_value(self.app.defaults["gerber_editor_lin_angle"])
  2496. # circular array
  2497. self.pad_direction_radio.set_value(self.app.defaults["gerber_editor_circ_dir"])
  2498. self.pad_angle_entry.set_value(float(self.app.defaults["gerber_editor_circ_angle"]))
  2499. def build_ui(self, first_run=None):
  2500. try:
  2501. # if connected, disconnect the signal from the slot on item_changed as it creates issues
  2502. self.apertures_table.itemChanged.disconnect()
  2503. except (TypeError, AttributeError):
  2504. pass
  2505. try:
  2506. self.apertures_table.cellPressed.disconnect()
  2507. except (TypeError, AttributeError):
  2508. pass
  2509. # updated units
  2510. self.units = self.app.defaults['units'].upper()
  2511. # make a new name for the new Excellon object (the one with edited content)
  2512. self.edited_obj_name = self.gerber_obj.options['name']
  2513. self.name_entry.set_value(self.edited_obj_name)
  2514. self.apertures_row = 0
  2515. # aper_no = self.apertures_row + 1
  2516. sort = []
  2517. for k, v in list(self.storage_dict.items()):
  2518. sort.append(int(k))
  2519. sorted_apertures = sorted(sort)
  2520. # sort = []
  2521. # for k, v in list(self.gerber_obj.aperture_macros.items()):
  2522. # sort.append(k)
  2523. # sorted_macros = sorted(sort)
  2524. # n = len(sorted_apertures) + len(sorted_macros)
  2525. n = len(sorted_apertures)
  2526. self.apertures_table.setRowCount(n)
  2527. for ap_code in sorted_apertures:
  2528. ap_code = str(ap_code)
  2529. ap_id_item = QtWidgets.QTableWidgetItem('%d' % int(self.apertures_row + 1))
  2530. ap_id_item.setFlags(QtCore.Qt.ItemIsSelectable | QtCore.Qt.ItemIsEnabled)
  2531. self.apertures_table.setItem(self.apertures_row, 0, ap_id_item) # Tool name/id
  2532. ap_code_item = QtWidgets.QTableWidgetItem(ap_code)
  2533. ap_code_item.setFlags(QtCore.Qt.ItemIsEnabled)
  2534. ap_type_item = QtWidgets.QTableWidgetItem(str(self.storage_dict[ap_code]['type']))
  2535. ap_type_item.setFlags(QtCore.Qt.ItemIsEnabled)
  2536. if str(self.storage_dict[ap_code]['type']) == 'R' or str(self.storage_dict[ap_code]['type']) == 'O':
  2537. ap_dim_item = QtWidgets.QTableWidgetItem(
  2538. '%.*f, %.*f' % (self.decimals, self.storage_dict[ap_code]['width'],
  2539. self.decimals, self.storage_dict[ap_code]['height']
  2540. )
  2541. )
  2542. ap_dim_item.setFlags(QtCore.Qt.ItemIsEnabled)
  2543. elif str(self.storage_dict[ap_code]['type']) == 'P':
  2544. ap_dim_item = QtWidgets.QTableWidgetItem(
  2545. '%.*f, %.*f' % (self.decimals, self.storage_dict[ap_code]['diam'],
  2546. self.decimals, self.storage_dict[ap_code]['nVertices'])
  2547. )
  2548. ap_dim_item.setFlags(QtCore.Qt.ItemIsEnabled)
  2549. else:
  2550. ap_dim_item = QtWidgets.QTableWidgetItem('')
  2551. ap_dim_item.setFlags(QtCore.Qt.ItemIsEnabled)
  2552. try:
  2553. if self.storage_dict[ap_code]['size'] is not None:
  2554. ap_size_item = QtWidgets.QTableWidgetItem('%.*f' % (self.decimals,
  2555. float(self.storage_dict[ap_code]['size'])))
  2556. else:
  2557. ap_size_item = QtWidgets.QTableWidgetItem('')
  2558. except KeyError:
  2559. ap_size_item = QtWidgets.QTableWidgetItem('')
  2560. ap_size_item.setFlags(QtCore.Qt.ItemIsEnabled)
  2561. self.apertures_table.setItem(self.apertures_row, 1, ap_code_item) # Aperture Code
  2562. self.apertures_table.setItem(self.apertures_row, 2, ap_type_item) # Aperture Type
  2563. self.apertures_table.setItem(self.apertures_row, 3, ap_size_item) # Aperture Dimensions
  2564. self.apertures_table.setItem(self.apertures_row, 4, ap_dim_item) # Aperture Dimensions
  2565. self.apertures_row += 1
  2566. if first_run is True:
  2567. # set now the last aperture selected
  2568. self.last_aperture_selected = ap_code
  2569. # for ap_code in sorted_macros:
  2570. # ap_code = str(ap_code)
  2571. #
  2572. # ap_id_item = QtWidgets.QTableWidgetItem('%d' % int(self.apertures_row + 1))
  2573. # ap_id_item.setFlags(QtCore.Qt.ItemIsSelectable | QtCore.Qt.ItemIsEnabled)
  2574. # self.apertures_table.setItem(self.apertures_row, 0, ap_id_item) # Tool name/id
  2575. #
  2576. # ap_code_item = QtWidgets.QTableWidgetItem(ap_code)
  2577. #
  2578. # ap_type_item = QtWidgets.QTableWidgetItem('AM')
  2579. # ap_type_item.setFlags(QtCore.Qt.ItemIsEnabled)
  2580. #
  2581. # self.apertures_table.setItem(self.apertures_row, 1, ap_code_item) # Aperture Code
  2582. # self.apertures_table.setItem(self.apertures_row, 2, ap_type_item) # Aperture Type
  2583. #
  2584. # self.apertures_row += 1
  2585. # if first_run is True:
  2586. # # set now the last aperture selected
  2587. # self.last_aperture_selected = ap_code
  2588. self.apertures_table.selectColumn(0)
  2589. self.apertures_table.resizeColumnsToContents()
  2590. self.apertures_table.resizeRowsToContents()
  2591. vertical_header = self.apertures_table.verticalHeader()
  2592. # vertical_header.setSectionResizeMode(QtWidgets.QHeaderView.ResizeToContents)
  2593. vertical_header.hide()
  2594. self.apertures_table.setVerticalScrollBarPolicy(QtCore.Qt.ScrollBarAlwaysOff)
  2595. horizontal_header = self.apertures_table.horizontalHeader()
  2596. horizontal_header.setMinimumSectionSize(10)
  2597. horizontal_header.setDefaultSectionSize(70)
  2598. horizontal_header.setSectionResizeMode(0, QtWidgets.QHeaderView.Fixed)
  2599. horizontal_header.resizeSection(0, 27)
  2600. horizontal_header.setSectionResizeMode(1, QtWidgets.QHeaderView.ResizeToContents)
  2601. horizontal_header.setSectionResizeMode(2, QtWidgets.QHeaderView.ResizeToContents)
  2602. horizontal_header.setSectionResizeMode(3, QtWidgets.QHeaderView.ResizeToContents)
  2603. horizontal_header.setSectionResizeMode(4, QtWidgets.QHeaderView.Stretch)
  2604. self.apertures_table.setHorizontalScrollBarPolicy(QtCore.Qt.ScrollBarAlwaysOff)
  2605. self.apertures_table.setSortingEnabled(False)
  2606. self.apertures_table.setMinimumHeight(self.apertures_table.getHeight())
  2607. self.apertures_table.setMaximumHeight(self.apertures_table.getHeight())
  2608. # make sure no rows are selected so the user have to click the correct row, meaning selecting the correct tool
  2609. self.apertures_table.clearSelection()
  2610. # Remove anything else in the GUI Selected Tab
  2611. self.app.ui.selected_scroll_area.takeWidget()
  2612. # Put ourselves in the GUI Selected Tab
  2613. self.app.ui.selected_scroll_area.setWidget(self.grb_edit_widget)
  2614. # Switch notebook to Selected page
  2615. self.app.ui.notebook.setCurrentWidget(self.app.ui.selected_tab)
  2616. # we reactivate the signals after the after the tool adding as we don't need to see the tool been populated
  2617. self.apertures_table.itemChanged.connect(self.on_tool_edit)
  2618. self.apertures_table.cellPressed.connect(self.on_row_selected)
  2619. # for convenience set the next aperture code in the apcode field
  2620. try:
  2621. self.apcode_entry.set_value(max(self.tool2tooldia.values()) + 1)
  2622. except ValueError:
  2623. # this means that the edited object has no apertures so we start with 10 (Gerber specifications)
  2624. self.apcode_entry.set_value(self.app.defaults["gerber_editor_newcode"])
  2625. def on_aperture_add(self, apid=None):
  2626. self.is_modified = True
  2627. if apid:
  2628. ap_id = apid
  2629. else:
  2630. try:
  2631. ap_id = str(self.apcode_entry.get_value())
  2632. except ValueError:
  2633. self.app.inform.emit('[WARNING_NOTCL] %s' %
  2634. _("Aperture code value is missing or wrong format. Add it and retry."))
  2635. return
  2636. if ap_id == '':
  2637. self.app.inform.emit('[WARNING_NOTCL] %s' %
  2638. _("Aperture code value is missing or wrong format. Add it and retry."))
  2639. return
  2640. if ap_id == '0':
  2641. if ap_id not in self.tool2tooldia:
  2642. self.storage_dict[ap_id] = {}
  2643. self.storage_dict[ap_id]['type'] = 'REG'
  2644. size_val = 0
  2645. self.apsize_entry.set_value(size_val)
  2646. self.storage_dict[ap_id]['size'] = size_val
  2647. self.storage_dict[ap_id]['geometry'] = []
  2648. # self.olddia_newdia dict keeps the evidence on current aperture codes as keys and gets updated on values
  2649. # each time a aperture code is edited or added
  2650. self.olddia_newdia[ap_id] = ap_id
  2651. else:
  2652. if ap_id not in self.olddia_newdia:
  2653. self.storage_dict[ap_id] = {}
  2654. type_val = self.aptype_cb.currentText()
  2655. self.storage_dict[ap_id]['type'] = type_val
  2656. if type_val == 'R' or type_val == 'O':
  2657. try:
  2658. dims = self.apdim_entry.get_value()
  2659. self.storage_dict[ap_id]['width'] = dims[0]
  2660. self.storage_dict[ap_id]['height'] = dims[1]
  2661. size_val = np.sqrt((dims[0] ** 2) + (dims[1] ** 2))
  2662. self.apsize_entry.set_value(size_val)
  2663. except Exception as e:
  2664. log.error("FlatCAMGrbEditor.on_aperture_add() --> the R or O aperture dims has to be in a "
  2665. "tuple format (x,y)\nError: %s" % str(e))
  2666. self.app.inform.emit('[WARNING_NOTCL] %s' %
  2667. _("Aperture dimensions value is missing or wrong format. "
  2668. "Add it in format (width, height) and retry."))
  2669. return
  2670. else:
  2671. try:
  2672. size_val = float(self.apsize_entry.get_value())
  2673. except ValueError:
  2674. # try to convert comma to decimal point. if it's still not working error message and return
  2675. try:
  2676. size_val = float(self.apsize_entry.get_value().replace(',', '.'))
  2677. self.apsize_entry.set_value(size_val)
  2678. except ValueError:
  2679. self.app.inform.emit('[WARNING_NOTCL] %s' %
  2680. _("Aperture size value is missing or wrong format. Add it and retry."))
  2681. return
  2682. self.storage_dict[ap_id]['size'] = size_val
  2683. self.storage_dict[ap_id]['geometry'] = []
  2684. # self.olddia_newdia dict keeps the evidence on current aperture codes as keys and gets updated on
  2685. # values each time a aperture code is edited or added
  2686. self.olddia_newdia[ap_id] = ap_id
  2687. else:
  2688. self.app.inform.emit('[WARNING_NOTCL] %s' %
  2689. _("Aperture already in the aperture table."))
  2690. return
  2691. # since we add a new tool, we update also the initial state of the tool_table through it's dictionary
  2692. # we add a new entry in the tool2tooldia dict
  2693. self.tool2tooldia[len(self.olddia_newdia)] = int(ap_id)
  2694. self.app.inform.emit('[success] %s: %s' %
  2695. (_("Added new aperture with code"), str(ap_id)))
  2696. self.build_ui()
  2697. self.last_aperture_selected = ap_id
  2698. # make a quick sort through the tool2tooldia dict so we find which row to select
  2699. row_to_be_selected = None
  2700. for key in sorted(self.tool2tooldia):
  2701. if self.tool2tooldia[key] == int(ap_id):
  2702. row_to_be_selected = int(key) - 1
  2703. break
  2704. self.apertures_table.selectRow(row_to_be_selected)
  2705. def on_aperture_delete(self, ap_id=None):
  2706. self.is_modified = True
  2707. deleted_apcode_list = []
  2708. try:
  2709. if ap_id:
  2710. if isinstance(ap_id, list):
  2711. for dd in ap_id:
  2712. deleted_apcode_list.append(dd)
  2713. else:
  2714. deleted_apcode_list.append(ap_id)
  2715. else:
  2716. # deleted_tool_dia = float(self.apertures_table.item(self.apertures_table.currentRow(), 1).text())
  2717. if len(self.apertures_table.selectionModel().selectedRows()) == 0:
  2718. self.app.inform.emit('[WARNING_NOTCL]%s' %
  2719. _(" Select an aperture in Aperture Table"))
  2720. return
  2721. for index in self.apertures_table.selectionModel().selectedRows():
  2722. row = index.row()
  2723. deleted_apcode_list.append(self.apertures_table.item(row, 1).text())
  2724. except Exception as exc:
  2725. self.app.inform.emit('[WARNING_NOTCL] %s %s' %
  2726. (_("Select an aperture in Aperture Table -->", str(exc))))
  2727. return
  2728. if deleted_apcode_list:
  2729. for deleted_aperture in deleted_apcode_list:
  2730. # delete the storage used for that tool
  2731. self.storage_dict.pop(deleted_aperture, None)
  2732. # I've added this flag_del variable because dictionary don't like
  2733. # having keys deleted while iterating through them
  2734. flag_del = list()
  2735. for deleted_tool in self.tool2tooldia:
  2736. if self.tool2tooldia[deleted_tool] == deleted_aperture:
  2737. flag_del.append(deleted_tool)
  2738. if flag_del:
  2739. for aperture_to_be_deleted in flag_del:
  2740. # delete the tool
  2741. self.tool2tooldia.pop(aperture_to_be_deleted, None)
  2742. self.olddia_newdia.pop(deleted_aperture, None)
  2743. self.app.inform.emit('[success] %s: %s' %
  2744. (_("Deleted aperture with code"), str(deleted_aperture)))
  2745. flag_del.clear()
  2746. self.plot_all()
  2747. self.build_ui()
  2748. # if last aperture selected was in the apertures deleted than make sure to select a
  2749. # 'new' last aperture selected because there are tools who depend on it.
  2750. # if there is no aperture left, then add a default one :)
  2751. if self.last_aperture_selected in deleted_apcode_list:
  2752. if self.apertures_table.rowCount() == 0:
  2753. self.on_aperture_add('10')
  2754. else:
  2755. self.last_aperture_selected = self.apertures_table.item(0, 1).text()
  2756. def on_tool_edit(self):
  2757. # if connected, disconnect the signal from the slot on item_changed as it creates issues
  2758. self.apertures_table.itemChanged.disconnect()
  2759. # self.apertures_table.cellPressed.disconnect()
  2760. self.is_modified = True
  2761. current_table_dia_edited = None
  2762. if self.apertures_table.currentItem() is not None:
  2763. try:
  2764. current_table_dia_edited = float(self.apertures_table.currentItem().text())
  2765. except ValueError as e:
  2766. log.debug("FlatCAMExcEditor.on_tool_edit() --> %s" % str(e))
  2767. self.apertures_table.setCurrentItem(None)
  2768. return
  2769. row_of_item_changed = self.apertures_table.currentRow()
  2770. # rows start with 0, tools start with 1 so we adjust the value by 1
  2771. key_in_tool2tooldia = row_of_item_changed + 1
  2772. dia_changed = self.tool2tooldia[key_in_tool2tooldia]
  2773. # aperture code is not used so we create a new tool with the desired diameter
  2774. if current_table_dia_edited not in self.olddia_newdia.values():
  2775. # update the dict that holds as keys our initial diameters and as values the edited diameters
  2776. self.olddia_newdia[dia_changed] = current_table_dia_edited
  2777. # update the dict that holds tool_no as key and tool_dia as value
  2778. self.tool2tooldia[key_in_tool2tooldia] = current_table_dia_edited
  2779. # update the tool offset
  2780. modified_offset = self.gerber_obj.tool_offset.pop(dia_changed)
  2781. self.gerber_obj.tool_offset[current_table_dia_edited] = modified_offset
  2782. self.plot_all()
  2783. else:
  2784. # aperture code is already in use so we move the pads from the prior tool to the new tool
  2785. factor = current_table_dia_edited / dia_changed
  2786. geometry = []
  2787. for geo_el in self.storage_dict[dia_changed]:
  2788. geometric_data = geo_el.geo
  2789. new_geo_el = dict()
  2790. if 'solid' in geometric_data:
  2791. new_geo_el['solid'] = deepcopy(affinity.scale(geometric_data['solid'],
  2792. xfact=factor, yfact=factor))
  2793. if 'follow' in geometric_data:
  2794. new_geo_el['follow'] = deepcopy(affinity.scale(geometric_data['follow'],
  2795. xfact=factor, yfact=factor))
  2796. if 'clear' in geometric_data:
  2797. new_geo_el['clear'] = deepcopy(affinity.scale(geometric_data['clear'],
  2798. xfact=factor, yfact=factor))
  2799. geometry.append(new_geo_el)
  2800. self.add_gerber_shape(geometry, self.storage_dict[current_table_dia_edited])
  2801. self.on_aperture_delete(apid=dia_changed)
  2802. # delete the tool offset
  2803. self.gerber_obj.tool_offset.pop(dia_changed, None)
  2804. # we reactivate the signals after the after the tool editing
  2805. self.apertures_table.itemChanged.connect(self.on_tool_edit)
  2806. # self.apertures_table.cellPressed.connect(self.on_row_selected)
  2807. def on_name_activate(self):
  2808. self.edited_obj_name = self.name_entry.get_value()
  2809. def on_aptype_changed(self, current_text):
  2810. # 'O' is letter O not zero.
  2811. if current_text == 'R' or current_text == 'O':
  2812. self.apdim_lbl.show()
  2813. self.apdim_entry.show()
  2814. self.apsize_entry.setDisabled(True)
  2815. else:
  2816. self.apdim_lbl.hide()
  2817. self.apdim_entry.hide()
  2818. self.apsize_entry.setDisabled(False)
  2819. def activate_grb_editor(self):
  2820. # adjust the status of the menu entries related to the editor
  2821. self.app.ui.menueditedit.setDisabled(True)
  2822. self.app.ui.menueditok.setDisabled(False)
  2823. # adjust the visibility of some of the canvas context menu
  2824. self.app.ui.popmenu_edit.setVisible(False)
  2825. self.app.ui.popmenu_save.setVisible(True)
  2826. self.connect_canvas_event_handlers()
  2827. # init working objects
  2828. self.storage_dict = {}
  2829. self.current_storage = []
  2830. self.sorted_apid = []
  2831. self.new_apertures = {}
  2832. self.new_aperture_macros = {}
  2833. self.grb_plot_promises = []
  2834. self.olddia_newdia = {}
  2835. self.tool2tooldia = {}
  2836. self.shapes.enabled = True
  2837. self.tool_shape.enabled = True
  2838. self.app.ui.snap_max_dist_entry.setEnabled(True)
  2839. self.app.ui.corner_snap_btn.setEnabled(True)
  2840. self.app.ui.snap_magnet.setVisible(True)
  2841. self.app.ui.corner_snap_btn.setVisible(True)
  2842. self.app.ui.grb_editor_menu.setDisabled(False)
  2843. self.app.ui.grb_editor_menu.menuAction().setVisible(True)
  2844. self.app.ui.update_obj_btn.setEnabled(True)
  2845. self.app.ui.grb_editor_cmenu.setEnabled(True)
  2846. self.app.ui.grb_edit_toolbar.setDisabled(False)
  2847. self.app.ui.grb_edit_toolbar.setVisible(True)
  2848. # self.app.ui.snap_toolbar.setDisabled(False)
  2849. # start with GRID toolbar activated
  2850. if self.app.ui.grid_snap_btn.isChecked() is False:
  2851. self.app.ui.grid_snap_btn.trigger()
  2852. # adjust the visibility of some of the canvas context menu
  2853. self.app.ui.popmenu_edit.setVisible(False)
  2854. self.app.ui.popmenu_save.setVisible(True)
  2855. self.app.ui.popmenu_disable.setVisible(False)
  2856. self.app.ui.cmenu_newmenu.menuAction().setVisible(False)
  2857. self.app.ui.popmenu_properties.setVisible(False)
  2858. self.app.ui.grb_editor_cmenu.menuAction().setVisible(True)
  2859. # Tell the App that the editor is active
  2860. self.editor_active = True
  2861. def deactivate_grb_editor(self):
  2862. try:
  2863. QtGui.QGuiApplication.restoreOverrideCursor()
  2864. except Exception as e:
  2865. log.debug("FlatCAMGrbEditor.deactivate_grb_editor() --> %s" % str(e))
  2866. # adjust the status of the menu entries related to the editor
  2867. self.app.ui.menueditedit.setDisabled(False)
  2868. self.app.ui.menueditok.setDisabled(True)
  2869. # adjust the visibility of some of the canvas context menu
  2870. self.app.ui.popmenu_edit.setVisible(True)
  2871. self.app.ui.popmenu_save.setVisible(False)
  2872. self.disconnect_canvas_event_handlers()
  2873. self.clear()
  2874. self.app.ui.grb_edit_toolbar.setDisabled(True)
  2875. settings = QSettings("Open Source", "FlatCAM")
  2876. if settings.contains("layout"):
  2877. layout = settings.value('layout', type=str)
  2878. if layout == 'standard':
  2879. # self.app.ui.exc_edit_toolbar.setVisible(False)
  2880. self.app.ui.snap_max_dist_entry.setEnabled(False)
  2881. self.app.ui.corner_snap_btn.setEnabled(False)
  2882. self.app.ui.snap_magnet.setVisible(False)
  2883. self.app.ui.corner_snap_btn.setVisible(False)
  2884. elif layout == 'compact':
  2885. # self.app.ui.exc_edit_toolbar.setVisible(True)
  2886. self.app.ui.snap_max_dist_entry.setEnabled(False)
  2887. self.app.ui.corner_snap_btn.setEnabled(False)
  2888. self.app.ui.snap_magnet.setVisible(True)
  2889. self.app.ui.corner_snap_btn.setVisible(True)
  2890. else:
  2891. # self.app.ui.exc_edit_toolbar.setVisible(False)
  2892. self.app.ui.snap_max_dist_entry.setEnabled(False)
  2893. self.app.ui.corner_snap_btn.setEnabled(False)
  2894. self.app.ui.snap_magnet.setVisible(False)
  2895. self.app.ui.corner_snap_btn.setVisible(False)
  2896. # set the Editor Toolbar visibility to what was before entering in the Editor
  2897. self.app.ui.grb_edit_toolbar.setVisible(False) if self.toolbar_old_state is False \
  2898. else self.app.ui.grb_edit_toolbar.setVisible(True)
  2899. # Disable visuals
  2900. self.shapes.enabled = False
  2901. self.tool_shape.enabled = False
  2902. # self.app.app_cursor.enabled = False
  2903. # Tell the app that the editor is no longer active
  2904. self.editor_active = False
  2905. self.app.ui.grb_editor_menu.setDisabled(True)
  2906. self.app.ui.grb_editor_menu.menuAction().setVisible(False)
  2907. self.app.ui.update_obj_btn.setEnabled(False)
  2908. # adjust the visibility of some of the canvas context menu
  2909. self.app.ui.popmenu_edit.setVisible(True)
  2910. self.app.ui.popmenu_save.setVisible(False)
  2911. self.app.ui.popmenu_disable.setVisible(True)
  2912. self.app.ui.cmenu_newmenu.menuAction().setVisible(True)
  2913. self.app.ui.popmenu_properties.setVisible(True)
  2914. self.app.ui.g_editor_cmenu.menuAction().setVisible(False)
  2915. self.app.ui.e_editor_cmenu.menuAction().setVisible(False)
  2916. self.app.ui.grb_editor_cmenu.menuAction().setVisible(False)
  2917. # Show original geometry
  2918. if self.gerber_obj:
  2919. self.gerber_obj.visible = True
  2920. def connect_canvas_event_handlers(self):
  2921. # Canvas events
  2922. # make sure that the shortcuts key and mouse events will no longer be linked to the methods from FlatCAMApp
  2923. # but those from FlatCAMGeoEditor
  2924. # first connect to new, then disconnect the old handlers
  2925. # don't ask why but if there is nothing connected I've seen issues
  2926. self.mp = self.canvas.graph_event_connect('mouse_press', self.on_canvas_click)
  2927. self.mm = self.canvas.graph_event_connect('mouse_move', self.on_canvas_move)
  2928. self.mr = self.canvas.graph_event_connect('mouse_release', self.on_grb_click_release)
  2929. if self.app.is_legacy is False:
  2930. self.canvas.graph_event_disconnect('mouse_press', self.app.on_mouse_click_over_plot)
  2931. self.canvas.graph_event_disconnect('mouse_move', self.app.on_mouse_move_over_plot)
  2932. self.canvas.graph_event_disconnect('mouse_release', self.app.on_mouse_click_release_over_plot)
  2933. self.canvas.graph_event_disconnect('mouse_double_click', self.app.on_mouse_double_click_over_plot)
  2934. else:
  2935. self.canvas.graph_event_disconnect(self.app.mp)
  2936. self.canvas.graph_event_disconnect(self.app.mm)
  2937. self.canvas.graph_event_disconnect(self.app.mr)
  2938. self.canvas.graph_event_disconnect(self.app.mdc)
  2939. self.app.collection.view.clicked.disconnect()
  2940. self.app.ui.popmenu_copy.triggered.disconnect()
  2941. self.app.ui.popmenu_delete.triggered.disconnect()
  2942. self.app.ui.popmenu_move.triggered.disconnect()
  2943. self.app.ui.popmenu_copy.triggered.connect(self.on_copy_button)
  2944. self.app.ui.popmenu_delete.triggered.connect(self.on_delete_btn)
  2945. self.app.ui.popmenu_move.triggered.connect(self.on_move_button)
  2946. # Gerber Editor
  2947. self.app.ui.grb_draw_pad.triggered.connect(self.on_pad_add)
  2948. self.app.ui.grb_draw_pad_array.triggered.connect(self.on_pad_add_array)
  2949. self.app.ui.grb_draw_track.triggered.connect(self.on_track_add)
  2950. self.app.ui.grb_draw_region.triggered.connect(self.on_region_add)
  2951. self.app.ui.grb_draw_poligonize.triggered.connect(self.on_poligonize)
  2952. self.app.ui.grb_draw_semidisc.triggered.connect(self.on_add_semidisc)
  2953. self.app.ui.grb_draw_disc.triggered.connect(self.on_disc_add)
  2954. self.app.ui.grb_draw_buffer.triggered.connect(lambda: self.select_tool("buffer"))
  2955. self.app.ui.grb_draw_scale.triggered.connect(lambda: self.select_tool("scale"))
  2956. self.app.ui.grb_draw_markarea.triggered.connect(lambda: self.select_tool("markarea"))
  2957. self.app.ui.grb_draw_eraser.triggered.connect(self.on_eraser)
  2958. self.app.ui.grb_draw_transformations.triggered.connect(self.on_transform)
  2959. def disconnect_canvas_event_handlers(self):
  2960. # we restore the key and mouse control to FlatCAMApp method
  2961. # first connect to new, then disconnect the old handlers
  2962. # don't ask why but if there is nothing connected I've seen issues
  2963. self.app.mp = self.canvas.graph_event_connect('mouse_press', self.app.on_mouse_click_over_plot)
  2964. self.app.mm = self.canvas.graph_event_connect('mouse_move', self.app.on_mouse_move_over_plot)
  2965. self.app.mr = self.canvas.graph_event_connect('mouse_release', self.app.on_mouse_click_release_over_plot)
  2966. self.app.mdc = self.canvas.graph_event_connect('mouse_double_click', self.app.on_mouse_double_click_over_plot)
  2967. self.app.collection.view.clicked.connect(self.app.collection.on_mouse_down)
  2968. if self.app.is_legacy is False:
  2969. self.canvas.graph_event_disconnect('mouse_press', self.on_canvas_click)
  2970. self.canvas.graph_event_disconnect('mouse_move', self.on_canvas_move)
  2971. self.canvas.graph_event_disconnect('mouse_release', self.on_grb_click_release)
  2972. else:
  2973. self.canvas.graph_event_disconnect(self.mp)
  2974. self.canvas.graph_event_disconnect(self.mm)
  2975. self.canvas.graph_event_disconnect(self.mr)
  2976. try:
  2977. self.app.ui.popmenu_copy.triggered.disconnect(self.on_copy_button)
  2978. except (TypeError, AttributeError):
  2979. pass
  2980. try:
  2981. self.app.ui.popmenu_delete.triggered.disconnect(self.on_delete_btn)
  2982. except (TypeError, AttributeError):
  2983. pass
  2984. try:
  2985. self.app.ui.popmenu_move.triggered.disconnect(self.on_move_button)
  2986. except (TypeError, AttributeError):
  2987. pass
  2988. self.app.ui.popmenu_copy.triggered.connect(self.app.on_copy_object)
  2989. self.app.ui.popmenu_delete.triggered.connect(self.app.on_delete)
  2990. self.app.ui.popmenu_move.triggered.connect(self.app.obj_move)
  2991. # Gerber Editor
  2992. try:
  2993. self.app.ui.grb_draw_pad.triggered.disconnect(self.on_pad_add)
  2994. except (TypeError, AttributeError):
  2995. pass
  2996. try:
  2997. self.app.ui.grb_draw_pad_array.triggered.disconnect(self.on_pad_add_array)
  2998. except (TypeError, AttributeError):
  2999. pass
  3000. try:
  3001. self.app.ui.grb_draw_track.triggered.disconnect(self.on_track_add)
  3002. except (TypeError, AttributeError):
  3003. pass
  3004. try:
  3005. self.app.ui.grb_draw_region.triggered.disconnect(self.on_region_add)
  3006. except (TypeError, AttributeError):
  3007. pass
  3008. try:
  3009. self.app.ui.grb_draw_poligonize.triggered.disconnect(self.on_poligonize)
  3010. except (TypeError, AttributeError):
  3011. pass
  3012. try:
  3013. self.app.ui.grb_draw_semidisc.triggered.diconnect(self.on_add_semidisc)
  3014. except (TypeError, AttributeError):
  3015. pass
  3016. try:
  3017. self.app.ui.grb_draw_disc.triggered.disconnect(self.on_disc_add)
  3018. except (TypeError, AttributeError):
  3019. pass
  3020. try:
  3021. self.app.ui.grb_draw_buffer.triggered.disconnect()
  3022. except (TypeError, AttributeError):
  3023. pass
  3024. try:
  3025. self.app.ui.grb_draw_scale.triggered.disconnect()
  3026. except (TypeError, AttributeError):
  3027. pass
  3028. try:
  3029. self.app.ui.grb_draw_markarea.triggered.disconnect()
  3030. except (TypeError, AttributeError):
  3031. pass
  3032. try:
  3033. self.app.ui.grb_draw_eraser.triggered.disconnect(self.on_eraser)
  3034. except (TypeError, AttributeError):
  3035. pass
  3036. try:
  3037. self.app.ui.grb_draw_transformations.triggered.disconnect(self.on_transform)
  3038. except (TypeError, AttributeError):
  3039. pass
  3040. def clear(self):
  3041. self.active_tool = None
  3042. self.selected = []
  3043. self.shapes.clear(update=True)
  3044. self.tool_shape.clear(update=True)
  3045. self.ma_annotation.clear(update=True)
  3046. def edit_fcgerber(self, orig_grb_obj):
  3047. """
  3048. Imports the geometry found in self.apertures from the given FlatCAM Gerber object
  3049. into the editor.
  3050. :param orig_grb_obj: FlatCAMExcellon
  3051. :return: None
  3052. """
  3053. self.deactivate_grb_editor()
  3054. self.activate_grb_editor()
  3055. # reset the tool table
  3056. self.apertures_table.clear()
  3057. self.apertures_table.setHorizontalHeaderLabels(['#', _('Code'), _('Type'), _('Size'), _('Dim')])
  3058. self.last_aperture_selected = None
  3059. # create a reference to the source object
  3060. self.gerber_obj = orig_grb_obj
  3061. self.gerber_obj_options = orig_grb_obj.options
  3062. file_units = self.gerber_obj.units if self.gerber_obj.units else 'IN'
  3063. app_units = self.app.defaults['units']
  3064. self.conversion_factor = 25.4 if file_units == 'IN' else (1 / 25.4) if file_units != app_units else 1
  3065. # Hide original geometry
  3066. orig_grb_obj.visible = False
  3067. # Set selection tolerance
  3068. # DrawToolShape.tolerance = fc_excellon.drawing_tolerance * 10
  3069. self.select_tool("select")
  3070. try:
  3071. # we activate this after the initial build as we don't need to see the tool been populated
  3072. self.apertures_table.itemChanged.connect(self.on_tool_edit)
  3073. except Exception as e:
  3074. log.debug("FlatCAMGrbEditor.edit_fcgerber() --> %s" % str(e))
  3075. # apply the conversion factor on the obj.apertures
  3076. conv_apertures = deepcopy(self.gerber_obj.apertures)
  3077. for apid in self.gerber_obj.apertures:
  3078. for key in self.gerber_obj.apertures[apid]:
  3079. if key == 'width':
  3080. conv_apertures[apid]['width'] = self.gerber_obj.apertures[apid]['width'] * self.conversion_factor
  3081. elif key == 'height':
  3082. conv_apertures[apid]['height'] = self.gerber_obj.apertures[apid]['height'] * self.conversion_factor
  3083. elif key == 'diam':
  3084. conv_apertures[apid]['diam'] = self.gerber_obj.apertures[apid]['diam'] * self.conversion_factor
  3085. elif key == 'size':
  3086. conv_apertures[apid]['size'] = self.gerber_obj.apertures[apid]['size'] * self.conversion_factor
  3087. else:
  3088. conv_apertures[apid][key] = self.gerber_obj.apertures[apid][key]
  3089. self.gerber_obj.apertures = conv_apertures
  3090. self.gerber_obj.units = app_units
  3091. # # and then add it to the storage elements (each storage elements is a member of a list
  3092. # def job_thread(aperture_id):
  3093. # with self.app.proc_container.new('%s: %s ...' %
  3094. # (_("Adding geometry for aperture"), str(aperture_id))):
  3095. # storage_elem = []
  3096. # self.storage_dict[aperture_id] = {}
  3097. #
  3098. # # add the Gerber geometry to editor storage
  3099. # for k, v in self.gerber_obj.apertures[aperture_id].items():
  3100. # try:
  3101. # if k == 'geometry':
  3102. # for geo_el in v:
  3103. # if geo_el:
  3104. # self.add_gerber_shape(DrawToolShape(geo_el), storage_elem)
  3105. # self.storage_dict[aperture_id][k] = storage_elem
  3106. # else:
  3107. # self.storage_dict[aperture_id][k] = self.gerber_obj.apertures[aperture_id][k]
  3108. # except Exception as e:
  3109. # log.debug("FlatCAMGrbEditor.edit_fcgerber().job_thread() --> %s" % str(e))
  3110. #
  3111. # # Check promises and clear if exists
  3112. # while True:
  3113. # try:
  3114. # self.grb_plot_promises.remove(aperture_id)
  3115. # time.sleep(0.5)
  3116. # except ValueError:
  3117. # break
  3118. #
  3119. # # we create a job work each aperture, job that work in a threaded way to store the geometry in local storage
  3120. # # as DrawToolShapes
  3121. # for ap_id in self.gerber_obj.apertures:
  3122. # self.grb_plot_promises.append(ap_id)
  3123. # self.app.worker_task.emit({'fcn': job_thread, 'params': [ap_id]})
  3124. #
  3125. # self.set_ui()
  3126. #
  3127. # # do the delayed plot only if there is something to plot (the gerber is not empty)
  3128. # try:
  3129. # if bool(self.gerber_obj.apertures):
  3130. # self.start_delayed_plot(check_period=1000)
  3131. # else:
  3132. # raise AttributeError
  3133. # except AttributeError:
  3134. # # now that we have data (empty data actually), create the GUI interface and add it to the Tool Tab
  3135. # self.build_ui(first_run=True)
  3136. # # and add the first aperture to have something to play with
  3137. # self.on_aperture_add('10')
  3138. def worker_job(app_obj):
  3139. with app_obj.app.proc_container.new('%s ...' % _("Loading Gerber into Editor")):
  3140. # ############################################################# ##
  3141. # APPLY CLEAR_GEOMETRY on the SOLID_GEOMETRY
  3142. # ############################################################# ##
  3143. # list of clear geos that are to be applied to the entire file
  3144. global_clear_geo = []
  3145. # create one big geometry made out of all 'negative' (clear) polygons
  3146. for apid in app_obj.gerber_obj.apertures:
  3147. # first check if we have any clear_geometry (LPC) and if yes added it to the global_clear_geo
  3148. if 'geometry' in app_obj.gerber_obj.apertures[apid]:
  3149. for elem in app_obj.gerber_obj.apertures[apid]['geometry']:
  3150. if 'clear' in elem:
  3151. global_clear_geo.append(elem['clear'])
  3152. log.warning("Found %d clear polygons." % len(global_clear_geo))
  3153. global_clear_geo = MultiPolygon(global_clear_geo)
  3154. if isinstance(global_clear_geo, Polygon):
  3155. global_clear_geo = list(global_clear_geo)
  3156. # we subtract the big "negative" (clear) geometry from each solid polygon but only the part of
  3157. # clear geometry that fits inside the solid. otherwise we may loose the solid
  3158. for apid in app_obj.gerber_obj.apertures:
  3159. temp_solid_geometry = []
  3160. if 'geometry' in app_obj.gerber_obj.apertures[apid]:
  3161. # for elem in self.gerber_obj.apertures[apid]['geometry']:
  3162. # if 'solid' in elem:
  3163. # solid_geo = elem['solid']
  3164. # for clear_geo in global_clear_geo:
  3165. # # Make sure that the clear_geo is within the solid_geo otherwise we loose
  3166. # # the solid_geometry. We want for clear_geometry just to cut into solid_geometry not to
  3167. # # delete it
  3168. # if clear_geo.within(solid_geo):
  3169. # solid_geo = solid_geo.difference(clear_geo)
  3170. # try:
  3171. # for poly in solid_geo:
  3172. # new_elem = dict()
  3173. #
  3174. # new_elem['solid'] = poly
  3175. # if 'clear' in elem:
  3176. # new_elem['clear'] = poly
  3177. # if 'follow' in elem:
  3178. # new_elem['follow'] = poly
  3179. # temp_elem.append(deepcopy(new_elem))
  3180. # except TypeError:
  3181. # new_elem = dict()
  3182. # new_elem['solid'] = solid_geo
  3183. # if 'clear' in elem:
  3184. # new_elem['clear'] = solid_geo
  3185. # if 'follow' in elem:
  3186. # new_elem['follow'] = solid_geo
  3187. # temp_elem.append(deepcopy(new_elem))
  3188. for elem in app_obj.gerber_obj.apertures[apid]['geometry']:
  3189. new_elem = dict()
  3190. if 'solid' in elem:
  3191. solid_geo = elem['solid']
  3192. for clear_geo in global_clear_geo:
  3193. # Make sure that the clear_geo is within the solid_geo otherwise we loose
  3194. # the solid_geometry. We want for clear_geometry just to cut into solid_geometry
  3195. # not to delete it
  3196. if clear_geo.within(solid_geo):
  3197. solid_geo = solid_geo.difference(clear_geo)
  3198. new_elem['solid'] = solid_geo
  3199. if 'clear' in elem:
  3200. new_elem['clear'] = elem['clear']
  3201. if 'follow' in elem:
  3202. new_elem['follow'] = elem['follow']
  3203. temp_solid_geometry.append(deepcopy(new_elem))
  3204. app_obj.gerber_obj.apertures[apid]['geometry'] = deepcopy(temp_solid_geometry)
  3205. log.warning("Polygon difference done for %d apertures." % len(app_obj.gerber_obj.apertures))
  3206. # Loading the Geometry into Editor Storage
  3207. for ap_id, ap_dict in app_obj.gerber_obj.apertures.items():
  3208. app_obj.results.append(app_obj.pool.apply_async(app_obj.add_apertures, args=(ap_id, ap_dict)))
  3209. output = list()
  3210. for p in app_obj.results:
  3211. output.append(p.get())
  3212. for elem in output:
  3213. app_obj.storage_dict[elem[0]] = deepcopy(elem[1])
  3214. app_obj.mp_finished.emit(output)
  3215. self.app.worker_task.emit({'fcn': worker_job, 'params': [self]})
  3216. @staticmethod
  3217. def add_apertures(aperture_id, aperture_dict):
  3218. storage_elem = list()
  3219. storage_dict = dict()
  3220. for k, v in list(aperture_dict.items()):
  3221. try:
  3222. if k == 'geometry':
  3223. for geo_el in v:
  3224. if geo_el:
  3225. storage_elem.append(DrawToolShape(geo_el))
  3226. storage_dict[k] = storage_elem
  3227. else:
  3228. storage_dict[k] = aperture_dict[k]
  3229. except Exception as e:
  3230. log.debug("FlatCAMGrbEditor.edit_fcgerber().job_thread() --> %s" % str(e))
  3231. return [aperture_id, storage_dict]
  3232. def on_multiprocessing_finished(self):
  3233. self.app.proc_container.update_view_text(' %s' % _("Setting up the UI"))
  3234. self.app.inform.emit('[success] %s.' % _("Adding geometry finished. Preparing the GUI"))
  3235. self.set_ui()
  3236. self.build_ui(first_run=True)
  3237. self.plot_all()
  3238. # HACK: enabling/disabling the cursor seams to somehow update the shapes making them more 'solid'
  3239. # - perhaps is a bug in VisPy implementation
  3240. self.app.app_cursor.enabled = False
  3241. self.app.app_cursor.enabled = True
  3242. self.app.inform.emit('[success] %s' % _("Finished loading the Gerber object into the editor."))
  3243. def update_fcgerber(self):
  3244. """
  3245. Create a new Gerber object that contain the edited content of the source Gerber object
  3246. :return: None
  3247. """
  3248. new_grb_name = self.edited_obj_name
  3249. # if the 'delayed plot' malfunctioned stop the QTimer
  3250. try:
  3251. self.plot_thread.stop()
  3252. except Exception as e:
  3253. log.debug("FlatCAMGrbEditor.update_fcgerber() --> %s" % str(e))
  3254. if "_edit" in self.edited_obj_name:
  3255. try:
  3256. _id = int(self.edited_obj_name[-1]) + 1
  3257. new_grb_name = self.edited_obj_name[:-1] + str(_id)
  3258. except ValueError:
  3259. new_grb_name += "_1"
  3260. else:
  3261. new_grb_name = self.edited_obj_name + "_edit"
  3262. self.app.worker_task.emit({'fcn': self.new_edited_gerber,
  3263. 'params': [new_grb_name, self.storage_dict]})
  3264. @staticmethod
  3265. def update_options(obj):
  3266. try:
  3267. if not obj.options:
  3268. obj.options = dict()
  3269. obj.options['xmin'] = 0
  3270. obj.options['ymin'] = 0
  3271. obj.options['xmax'] = 0
  3272. obj.options['ymax'] = 0
  3273. return True
  3274. else:
  3275. return False
  3276. except AttributeError:
  3277. obj.options = dict()
  3278. return True
  3279. def new_edited_gerber(self, outname, aperture_storage):
  3280. """
  3281. Creates a new Gerber object for the edited Gerber. Thread-safe.
  3282. :param outname: Name of the resulting object. None causes the name to be that of the file.
  3283. :type outname: str
  3284. :param aperture_storage: a dictionary that holds all the objects geometry
  3285. :return: None
  3286. """
  3287. self.app.log.debug("Update the Gerber object with edited content. Source is: %s" %
  3288. self.gerber_obj.options['name'].upper())
  3289. out_name = outname
  3290. storage_dict = aperture_storage
  3291. local_storage_dict = dict()
  3292. for aperture in storage_dict:
  3293. if 'geometry' in storage_dict[aperture]:
  3294. # add aperture only if it has geometry
  3295. if len(storage_dict[aperture]['geometry']) > 0:
  3296. local_storage_dict[aperture] = deepcopy(storage_dict[aperture])
  3297. # How the object should be initialized
  3298. def obj_init(grb_obj, app_obj):
  3299. poly_buffer = []
  3300. follow_buffer = []
  3301. for storage_apid, storage_val in local_storage_dict.items():
  3302. grb_obj.apertures[storage_apid] = {}
  3303. for k, val in storage_val.items():
  3304. if k == 'geometry':
  3305. grb_obj.apertures[storage_apid][k] = []
  3306. for geo_el in val:
  3307. geometric_data = geo_el.geo
  3308. new_geo_el = dict()
  3309. if 'solid' in geometric_data:
  3310. new_geo_el['solid'] = geometric_data['solid']
  3311. poly_buffer.append(deepcopy(new_geo_el['solid']))
  3312. if 'follow' in geometric_data:
  3313. # if isinstance(geometric_data['follow'], Polygon):
  3314. # buff_val = -(int(storage_val['size']) / 2)
  3315. # geo_f = (geometric_data['follow'].buffer(buff_val)).exterior
  3316. # new_geo_el['follow'] = geo_f
  3317. # else:
  3318. # new_geo_el['follow'] = geometric_data['follow']
  3319. new_geo_el['follow'] = geometric_data['follow']
  3320. follow_buffer.append(deepcopy(new_geo_el['follow']))
  3321. else:
  3322. if 'solid' in geometric_data:
  3323. geo_f = geometric_data['solid'].exterior
  3324. new_geo_el['follow'] = geo_f
  3325. follow_buffer.append(deepcopy(new_geo_el['follow']))
  3326. if 'clear' in geometric_data:
  3327. new_geo_el['clear'] = geometric_data['clear']
  3328. if new_geo_el:
  3329. grb_obj.apertures[storage_apid][k].append(deepcopy(new_geo_el))
  3330. else:
  3331. grb_obj.apertures[storage_apid][k] = val
  3332. grb_obj.aperture_macros = deepcopy(self.gerber_obj.aperture_macros)
  3333. new_poly = MultiPolygon(poly_buffer)
  3334. new_poly = new_poly.buffer(0.00000001)
  3335. new_poly = new_poly.buffer(-0.00000001)
  3336. # for ad in grb_obj.apertures:
  3337. # print(ad, grb_obj.apertures[ad])
  3338. try:
  3339. __ = iter(new_poly)
  3340. except TypeError:
  3341. new_poly = [new_poly]
  3342. grb_obj.solid_geometry = deepcopy(new_poly)
  3343. grb_obj.follow_geometry = deepcopy(follow_buffer)
  3344. for k, v in self.gerber_obj_options.items():
  3345. if k == 'name':
  3346. grb_obj.options[k] = out_name
  3347. else:
  3348. grb_obj.options[k] = deepcopy(v)
  3349. grb_obj.multigeo = False
  3350. grb_obj.follow = False
  3351. grb_obj.units = app_obj.defaults['units']
  3352. try:
  3353. grb_obj.create_geometry()
  3354. except KeyError:
  3355. self.app.inform.emit('[ERROR_NOTCL] %s' %
  3356. _("There are no Aperture definitions in the file. Aborting Gerber creation."))
  3357. except Exception as e:
  3358. msg = '[ERROR] %s' % \
  3359. _("An internal error has occurred. See shell.\n")
  3360. msg += traceback.format_exc()
  3361. app_obj.inform.emit(msg)
  3362. raise
  3363. grb_obj.source_file = self.app.export_gerber(obj_name=out_name, filename=None,
  3364. local_use=grb_obj, use_thread=False)
  3365. with self.app.proc_container.new(_("Creating Gerber.")):
  3366. try:
  3367. self.app.new_object("gerber", outname, obj_init)
  3368. except Exception as e:
  3369. log.error("Error on Edited object creation: %s" % str(e))
  3370. # make sure to clean the previous results
  3371. self.results = list()
  3372. return
  3373. self.app.inform.emit('[success] %s' % _("Done. Gerber editing finished."))
  3374. # make sure to clean the previous results
  3375. self.results = list()
  3376. def on_tool_select(self, tool):
  3377. """
  3378. Behavior of the toolbar. Tool initialization.
  3379. :rtype : None
  3380. """
  3381. current_tool = tool
  3382. self.app.log.debug("on_tool_select('%s')" % tool)
  3383. if self.last_aperture_selected is None and current_tool is not 'select':
  3384. # self.draw_app.select_tool('select')
  3385. self.complete = True
  3386. current_tool = 'select'
  3387. self.app.inform.emit('[WARNING_NOTCL] %s' %
  3388. _("Cancelled. No aperture is selected"))
  3389. # This is to make the group behave as radio group
  3390. if current_tool in self.tools_gerber:
  3391. if self.tools_gerber[current_tool]["button"].isChecked():
  3392. self.app.log.debug("%s is checked." % current_tool)
  3393. for t in self.tools_gerber:
  3394. if t != current_tool:
  3395. self.tools_gerber[t]["button"].setChecked(False)
  3396. # this is where the Editor toolbar classes (button's) are instantiated
  3397. self.active_tool = self.tools_gerber[current_tool]["constructor"](self)
  3398. # self.app.inform.emit(self.active_tool.start_msg)
  3399. else:
  3400. self.app.log.debug("%s is NOT checked." % current_tool)
  3401. for t in self.tools_gerber:
  3402. self.tools_gerber[t]["button"].setChecked(False)
  3403. self.select_tool('select')
  3404. self.active_tool = FCApertureSelect(self)
  3405. def on_row_selected(self, row, col):
  3406. if col == 0:
  3407. key_modifier = QtWidgets.QApplication.keyboardModifiers()
  3408. if self.app.defaults["global_mselect_key"] == 'Control':
  3409. modifier_to_use = Qt.ControlModifier
  3410. else:
  3411. modifier_to_use = Qt.ShiftModifier
  3412. if key_modifier == modifier_to_use:
  3413. pass
  3414. else:
  3415. self.selected = []
  3416. try:
  3417. selected_ap_id = self.apertures_table.item(row, 1).text()
  3418. self.last_aperture_selected = copy(selected_ap_id)
  3419. for obj in self.storage_dict[selected_ap_id]['geometry']:
  3420. self.selected.append(obj)
  3421. except Exception as e:
  3422. self.app.log.debug(str(e))
  3423. self.plot_all()
  3424. def toolbar_tool_toggle(self, key):
  3425. """
  3426. :param key: key to update in self.options dictionary
  3427. :return:
  3428. """
  3429. self.options[key] = self.sender().isChecked()
  3430. return self.options[key]
  3431. def on_grb_shape_complete(self, storage=None, specific_shape=None, no_plot=False):
  3432. """
  3433. :param storage: where to store the shape
  3434. :param specific_shape: optional, the shape to be stored
  3435. :param no_plot: use this if you want the added shape not plotted
  3436. :return:
  3437. """
  3438. self.app.log.debug("on_grb_shape_complete()")
  3439. if specific_shape:
  3440. geo = specific_shape
  3441. else:
  3442. geo = deepcopy(self.active_tool.geometry)
  3443. if geo is None:
  3444. return
  3445. if storage is not None:
  3446. # Add shape
  3447. self.add_gerber_shape(geo, storage)
  3448. else:
  3449. stora = self.storage_dict[self.last_aperture_selected]['geometry']
  3450. self.add_gerber_shape(geo, storage=stora)
  3451. # Remove any utility shapes
  3452. self.delete_utility_geometry()
  3453. self.tool_shape.clear(update=True)
  3454. if no_plot is False:
  3455. # Re-plot and reset tool.
  3456. self.plot_all()
  3457. def add_gerber_shape(self, shape_element, storage):
  3458. """
  3459. Adds a shape to the shape storage.
  3460. :param shape_element: Shape to be added.
  3461. :type shape_element: DrawToolShape or DrawToolUtilityShape Geometry is stored as a dict with keys: solid,
  3462. follow, clear, each value being a list of Shapely objects. The dict can have at least one of the mentioned keys
  3463. :param storage: Where to store the shape
  3464. :return: None
  3465. """
  3466. # List of DrawToolShape?
  3467. if isinstance(shape_element, list):
  3468. for subshape in shape_element:
  3469. self.add_gerber_shape(subshape, storage)
  3470. return
  3471. assert isinstance(shape_element, DrawToolShape), \
  3472. "Expected a DrawToolShape, got %s" % str(type(shape_element))
  3473. assert shape_element.geo is not None, \
  3474. "Shape object has empty geometry (None)"
  3475. assert(isinstance(shape_element.geo, list) and len(shape_element.geo) > 0) or not \
  3476. isinstance(shape_element.geo, list), "Shape objects has empty geometry ([])"
  3477. if isinstance(shape_element, DrawToolUtilityShape):
  3478. self.utility.append(shape_element)
  3479. else:
  3480. storage.append(shape_element)
  3481. def on_canvas_click(self, event):
  3482. """
  3483. event.x and .y have canvas coordinates
  3484. event.xdata and .ydata have plot coordinates
  3485. :param event: Event object dispatched by VisPy
  3486. :return: None
  3487. """
  3488. if self.app.is_legacy is False:
  3489. event_pos = event.pos
  3490. event_is_dragging = event.is_dragging
  3491. right_button = 2
  3492. else:
  3493. event_pos = (event.xdata, event.ydata)
  3494. event_is_dragging = self.app.plotcanvas.is_dragging
  3495. right_button = 3
  3496. self.pos = self.canvas.translate_coords(event_pos)
  3497. if self.app.grid_status() == True:
  3498. self.pos = self.app.geo_editor.snap(self.pos[0], self.pos[1])
  3499. else:
  3500. self.pos = (self.pos[0], self.pos[1])
  3501. if event.button == 1:
  3502. self.app.ui.rel_position_label.setText("<b>Dx</b>: %.4f&nbsp;&nbsp; <b>Dy</b>: "
  3503. "%.4f&nbsp;&nbsp;&nbsp;&nbsp;" % (0, 0))
  3504. # Selection with left mouse button
  3505. if self.active_tool is not None:
  3506. modifiers = QtWidgets.QApplication.keyboardModifiers()
  3507. # If the SHIFT key is pressed when LMB is clicked then the coordinates are copied to clipboard
  3508. if modifiers == QtCore.Qt.ShiftModifier:
  3509. self.app.clipboard.setText(
  3510. self.app.defaults["global_point_clipboard_format"] % (self.pos[0], self.pos[1])
  3511. )
  3512. self.app.inform.emit('[success] %s' %
  3513. _("Coordinates copied to clipboard."))
  3514. return
  3515. # Dispatch event to active_tool
  3516. self.active_tool.click(self.app.geo_editor.snap(self.pos[0], self.pos[1]))
  3517. # If it is a shape generating tool
  3518. if isinstance(self.active_tool, FCShapeTool) and self.active_tool.complete:
  3519. if self.current_storage is not None:
  3520. self.on_grb_shape_complete(self.current_storage)
  3521. self.build_ui()
  3522. # MS: always return to the Select Tool if modifier key is not pressed
  3523. # else return to the current tool
  3524. key_modifier = QtWidgets.QApplication.keyboardModifiers()
  3525. if self.app.defaults["global_mselect_key"] == 'Control':
  3526. modifier_to_use = Qt.ControlModifier
  3527. else:
  3528. modifier_to_use = Qt.ShiftModifier
  3529. # if modifier key is pressed then we add to the selected list the current shape but if it's already
  3530. # in the selected list, we removed it. Therefore first click selects, second deselects.
  3531. if key_modifier == modifier_to_use:
  3532. self.select_tool(self.active_tool.name)
  3533. else:
  3534. # return to Select tool but not for FCPad
  3535. if isinstance(self.active_tool, FCPad):
  3536. self.select_tool(self.active_tool.name)
  3537. else:
  3538. self.select_tool("select")
  3539. return
  3540. if isinstance(self.active_tool, FCApertureSelect):
  3541. self.plot_all()
  3542. else:
  3543. self.app.log.debug("No active tool to respond to click!")
  3544. def on_grb_click_release(self, event):
  3545. self.modifiers = QtWidgets.QApplication.keyboardModifiers()
  3546. if self.app.is_legacy is False:
  3547. event_pos = event.pos
  3548. event_is_dragging = event.is_dragging
  3549. right_button = 2
  3550. else:
  3551. event_pos = (event.xdata, event.ydata)
  3552. event_is_dragging = self.app.plotcanvas.is_dragging
  3553. right_button = 3
  3554. pos_canvas = self.canvas.translate_coords(event_pos)
  3555. if self.app.grid_status() == True:
  3556. pos = self.app.geo_editor.snap(pos_canvas[0], pos_canvas[1])
  3557. else:
  3558. pos = (pos_canvas[0], pos_canvas[1])
  3559. # if the released mouse button was RMB then test if it was a panning motion or not, if not it was a context
  3560. # canvas menu
  3561. try:
  3562. if event.button == right_button: # right click
  3563. if self.app.ui.popMenu.mouse_is_panning is False:
  3564. if self.in_action is False:
  3565. try:
  3566. QtGui.QGuiApplication.restoreOverrideCursor()
  3567. except Exception as e:
  3568. log.debug("FlatCAMGrbEditor.on_grb_click_release() --> %s" % str(e))
  3569. if self.active_tool.complete is False and not isinstance(self.active_tool, FCApertureSelect):
  3570. self.active_tool.complete = True
  3571. self.in_action = False
  3572. self.delete_utility_geometry()
  3573. self.app.inform.emit('[success] %s' %
  3574. _("Done."))
  3575. self.select_tool('select')
  3576. else:
  3577. self.app.cursor = QtGui.QCursor()
  3578. self.app.populate_cmenu_grids()
  3579. self.app.ui.popMenu.popup(self.app.cursor.pos())
  3580. else:
  3581. # if right click on canvas and the active tool need to be finished (like Path or Polygon)
  3582. # right mouse click will finish the action
  3583. if isinstance(self.active_tool, FCShapeTool):
  3584. self.active_tool.click(self.app.geo_editor.snap(self.x, self.y))
  3585. self.active_tool.make()
  3586. if self.active_tool.complete:
  3587. self.on_grb_shape_complete()
  3588. self.app.inform.emit('[success] %s' %
  3589. _("Done."))
  3590. # MS: always return to the Select Tool if modifier key is not pressed
  3591. # else return to the current tool but not for FCTrack
  3592. if isinstance(self.active_tool, FCTrack):
  3593. self.select_tool(self.active_tool.name)
  3594. else:
  3595. key_modifier = QtWidgets.QApplication.keyboardModifiers()
  3596. if (self.app.defaults["global_mselect_key"] == 'Control' and
  3597. key_modifier == Qt.ControlModifier) or \
  3598. (self.app.defaults["global_mselect_key"] == 'Shift' and
  3599. key_modifier == Qt.ShiftModifier):
  3600. self.select_tool(self.active_tool.name)
  3601. else:
  3602. self.select_tool("select")
  3603. except Exception as e:
  3604. log.warning("FlatCAMGrbEditor.on_grb_click_release() RMB click --> Error: %s" % str(e))
  3605. raise
  3606. # if the released mouse button was LMB then test if we had a right-to-left selection or a left-to-right
  3607. # selection and then select a type of selection ("enclosing" or "touching")
  3608. try:
  3609. if event.button == 1: # left click
  3610. if self.app.selection_type is not None:
  3611. self.draw_selection_area_handler(self.pos, pos, self.app.selection_type)
  3612. self.app.selection_type = None
  3613. elif isinstance(self.active_tool, FCApertureSelect):
  3614. self.active_tool.click_release((self.pos[0], self.pos[1]))
  3615. # if there are selected objects then plot them
  3616. if self.selected:
  3617. self.plot_all()
  3618. except Exception as e:
  3619. log.warning("FlatCAMGrbEditor.on_grb_click_release() LMB click --> Error: %s" % str(e))
  3620. raise
  3621. def draw_selection_area_handler(self, start_pos, end_pos, sel_type):
  3622. """
  3623. :param start_pos: mouse position when the selection LMB click was done
  3624. :param end_pos: mouse position when the left mouse button is released
  3625. :param sel_type: if True it's a left to right selection (enclosure), if False it's a 'touch' selection
  3626. :return:
  3627. """
  3628. poly_selection = Polygon([start_pos, (end_pos[0], start_pos[1]), end_pos, (start_pos[0], end_pos[1])])
  3629. sel_aperture = set()
  3630. self.apertures_table.clearSelection()
  3631. self.app.delete_selection_shape()
  3632. for storage in self.storage_dict:
  3633. for obj in self.storage_dict[storage]['geometry']:
  3634. if 'solid' in obj.geo:
  3635. geometric_data = obj.geo['solid']
  3636. if (sel_type is True and poly_selection.contains(geometric_data)) or \
  3637. (sel_type is False and poly_selection.intersects(geometric_data)):
  3638. if self.key == self.app.defaults["global_mselect_key"]:
  3639. if obj in self.selected:
  3640. self.selected.remove(obj)
  3641. else:
  3642. # add the object to the selected shapes
  3643. self.selected.append(obj)
  3644. sel_aperture.add(storage)
  3645. else:
  3646. self.selected.append(obj)
  3647. sel_aperture.add(storage)
  3648. try:
  3649. self.apertures_table.cellPressed.disconnect()
  3650. except Exception as e:
  3651. log.debug("FlatCAMGrbEditor.draw_selection_Area_handler() --> %s" % str(e))
  3652. # select the aperture code of the selected geometry, in the tool table
  3653. self.apertures_table.setSelectionMode(QtWidgets.QAbstractItemView.MultiSelection)
  3654. for aper in sel_aperture:
  3655. for row_to_sel in range(self.apertures_table.rowCount()):
  3656. if str(aper) == self.apertures_table.item(row_to_sel, 1).text():
  3657. if row_to_sel not in set(index.row() for index in self.apertures_table.selectedIndexes()):
  3658. self.apertures_table.selectRow(row_to_sel)
  3659. self.last_aperture_selected = aper
  3660. self.apertures_table.setSelectionMode(QtWidgets.QAbstractItemView.ExtendedSelection)
  3661. self.apertures_table.cellPressed.connect(self.on_row_selected)
  3662. self.plot_all()
  3663. def on_canvas_move(self, event):
  3664. """
  3665. Called on 'mouse_move' event
  3666. event.pos have canvas screen coordinates
  3667. :param event: Event object dispatched by VisPy SceneCavas
  3668. :return: None
  3669. """
  3670. if self.app.is_legacy is False:
  3671. event_pos = event.pos
  3672. event_is_dragging = event.is_dragging
  3673. right_button = 2
  3674. else:
  3675. event_pos = (event.xdata, event.ydata)
  3676. event_is_dragging = self.app.plotcanvas.is_dragging
  3677. right_button = 3
  3678. pos_canvas = self.canvas.translate_coords(event_pos)
  3679. event.xdata, event.ydata = pos_canvas[0], pos_canvas[1]
  3680. self.x = event.xdata
  3681. self.y = event.ydata
  3682. self.app.ui.popMenu.mouse_is_panning = False
  3683. # if the RMB is clicked and mouse is moving over plot then 'panning_action' is True
  3684. if event.button == right_button and event_is_dragging == 1:
  3685. self.app.ui.popMenu.mouse_is_panning = True
  3686. return
  3687. try:
  3688. x = float(event.xdata)
  3689. y = float(event.ydata)
  3690. except TypeError:
  3691. return
  3692. if self.active_tool is None:
  3693. return
  3694. # # ## Snap coordinates
  3695. if self.app.grid_status() == True:
  3696. x, y = self.app.geo_editor.snap(x, y)
  3697. # Update cursor
  3698. self.app.app_cursor.set_data(np.asarray([(x, y)]), symbol='++', edge_color=self.app.cursor_color_3D,
  3699. size=self.app.defaults["global_cursor_size"])
  3700. self.snap_x = x
  3701. self.snap_y = y
  3702. # update the position label in the infobar since the APP mouse event handlers are disconnected
  3703. self.app.ui.position_label.setText("&nbsp;&nbsp;&nbsp;&nbsp;<b>X</b>: %.4f&nbsp;&nbsp; "
  3704. "<b>Y</b>: %.4f" % (x, y))
  3705. if self.pos is None:
  3706. self.pos = (0, 0)
  3707. dx = x - self.pos[0]
  3708. dy = y - self.pos[1]
  3709. # update the reference position label in the infobar since the APP mouse event handlers are disconnected
  3710. self.app.ui.rel_position_label.setText("<b>Dx</b>: %.4f&nbsp;&nbsp; <b>Dy</b>: "
  3711. "%.4f&nbsp;&nbsp;&nbsp;&nbsp;" % (dx, dy))
  3712. # # ## Utility geometry (animated)
  3713. geo = self.active_tool.utility_geometry(data=(x, y))
  3714. if isinstance(geo, DrawToolShape) and geo.geo is not None:
  3715. # Remove any previous utility shape
  3716. self.tool_shape.clear(update=True)
  3717. self.draw_utility_geometry(geo=geo)
  3718. # # ## Selection area on canvas section # ##
  3719. if event_is_dragging == 1 and event.button == 1:
  3720. # I make an exception for FCRegion and FCTrack because clicking and dragging while making regions can
  3721. # create strange issues like missing a point in a track/region
  3722. if isinstance(self.active_tool, FCRegion) or isinstance(self.active_tool, FCTrack):
  3723. pass
  3724. else:
  3725. dx = pos_canvas[0] - self.pos[0]
  3726. self.app.delete_selection_shape()
  3727. if dx < 0:
  3728. self.app.draw_moving_selection_shape((self.pos[0], self.pos[1]), (x, y),
  3729. color=self.app.defaults["global_alt_sel_line"],
  3730. face_color=self.app.defaults['global_alt_sel_fill'])
  3731. self.app.selection_type = False
  3732. else:
  3733. self.app.draw_moving_selection_shape((self.pos[0], self.pos[1]), (x, y))
  3734. self.app.selection_type = True
  3735. else:
  3736. self.app.selection_type = None
  3737. def draw_utility_geometry(self, geo):
  3738. if type(geo.geo) == list:
  3739. for el in geo.geo:
  3740. geometric_data = el['solid']
  3741. # Add the new utility shape
  3742. self.tool_shape.add(
  3743. shape=geometric_data, color=(self.app.defaults["global_draw_color"] + '80'),
  3744. # face_color=self.app.defaults['global_alt_sel_fill'],
  3745. update=False, layer=0, tolerance=None
  3746. )
  3747. else:
  3748. geometric_data = geo.geo['solid']
  3749. # Add the new utility shape
  3750. self.tool_shape.add(
  3751. shape=geometric_data,
  3752. color=(self.app.defaults["global_draw_color"] + '80'),
  3753. # face_color=self.app.defaults['global_alt_sel_fill'],
  3754. update=False, layer=0, tolerance=None
  3755. )
  3756. self.tool_shape.redraw()
  3757. def plot_all(self):
  3758. """
  3759. Plots all shapes in the editor.
  3760. :return: None
  3761. :rtype: None
  3762. """
  3763. with self.app.proc_container.new("Plotting"):
  3764. self.shapes.clear(update=True)
  3765. for storage in self.storage_dict:
  3766. for elem in self.storage_dict[storage]['geometry']:
  3767. if 'solid' in elem.geo:
  3768. geometric_data = elem.geo['solid']
  3769. if geometric_data is None:
  3770. continue
  3771. if elem in self.selected:
  3772. self.plot_shape(geometry=geometric_data,
  3773. color=self.app.defaults['global_sel_draw_color'] + 'FF',
  3774. linewidth=2)
  3775. else:
  3776. self.plot_shape(geometry=geometric_data,
  3777. color=self.app.defaults['global_draw_color'] + 'FF')
  3778. if self.utility:
  3779. for elem in self.utility:
  3780. geometric_data = elem.geo['solid']
  3781. self.plot_shape(geometry=geometric_data, linewidth=1)
  3782. continue
  3783. self.shapes.redraw()
  3784. def plot_shape(self, geometry=None, color='#000000FF', linewidth=1):
  3785. """
  3786. Plots a geometric object or list of objects without rendering. Plotted objects
  3787. are returned as a list. This allows for efficient/animated rendering.
  3788. :param geometry: Geometry to be plotted (Any Shapely.geom kind or list of such)
  3789. :param color: Shape color
  3790. :param linewidth: Width of lines in # of pixels.
  3791. :return: List of plotted elements.
  3792. """
  3793. if geometry is None:
  3794. geometry = self.active_tool.geometry
  3795. try:
  3796. self.shapes.add(shape=geometry.geo, color=color, face_color=color, layer=0, tolerance=self.tolerance)
  3797. except AttributeError as e:
  3798. if type(geometry) == Point:
  3799. return
  3800. if len(color) == 9:
  3801. color = color[:7] + 'AF'
  3802. self.shapes.add(shape=geometry, color=color, face_color=color, layer=0, tolerance=self.tolerance)
  3803. # def start_delayed_plot(self, check_period):
  3804. # """
  3805. # This function starts an QTImer and it will periodically check if all the workers finish the plotting functions
  3806. #
  3807. # :param check_period: time at which to check periodically if all plots finished to be plotted
  3808. # :return:
  3809. # """
  3810. #
  3811. # # self.plot_thread = threading.Thread(target=lambda: self.check_plot_finished(check_period))
  3812. # # self.plot_thread.start()
  3813. # log.debug("FlatCAMGrbEditor --> Delayed Plot started.")
  3814. # self.plot_thread = QtCore.QTimer()
  3815. # self.plot_thread.setInterval(check_period)
  3816. # self.plot_finished.connect(self.setup_ui_after_delayed_plot)
  3817. # self.plot_thread.timeout.connect(self.check_plot_finished)
  3818. # self.plot_thread.start()
  3819. #
  3820. # def check_plot_finished(self):
  3821. # """
  3822. # If all the promises made are finished then all the shapes are in shapes_storage and can be plotted safely and
  3823. # then the UI is rebuilt accordingly.
  3824. # :return:
  3825. # """
  3826. #
  3827. # try:
  3828. # if not self.grb_plot_promises:
  3829. # self.plot_thread.stop()
  3830. # self.plot_finished.emit()
  3831. # log.debug("FlatCAMGrbEditor --> delayed_plot finished")
  3832. # except Exception as e:
  3833. # traceback.print_exc()
  3834. #
  3835. # def setup_ui_after_delayed_plot(self):
  3836. # self.plot_finished.disconnect()
  3837. #
  3838. # # now that we have data, create the GUI interface and add it to the Tool Tab
  3839. # self.build_ui(first_run=True)
  3840. # self.plot_all()
  3841. #
  3842. # # HACK: enabling/disabling the cursor seams to somehow update the shapes making them more 'solid'
  3843. # # - perhaps is a bug in VisPy implementation
  3844. # self.app.app_cursor.enabled = False
  3845. # self.app.app_cursor.enabled = True
  3846. def get_selected(self):
  3847. """
  3848. Returns list of shapes that are selected in the editor.
  3849. :return: List of shapes.
  3850. """
  3851. # return [shape for shape in self.shape_buffer if shape["selected"]]
  3852. return self.selected
  3853. def delete_selected(self):
  3854. temp_ref = [s for s in self.selected]
  3855. if len(temp_ref) == 0:
  3856. self.app.inform.emit('[ERROR_NOTCL] %s' %
  3857. _("Failed. No aperture geometry is selected."))
  3858. return
  3859. for shape_sel in temp_ref:
  3860. self.delete_shape(shape_sel)
  3861. self.selected = []
  3862. self.build_ui()
  3863. self.app.inform.emit('[success] %s' %
  3864. _("Done. Apertures geometry deleted."))
  3865. def delete_shape(self, geo_el):
  3866. self.is_modified = True
  3867. if geo_el in self.utility:
  3868. self.utility.remove(geo_el)
  3869. return
  3870. for storage in self.storage_dict:
  3871. try:
  3872. if geo_el in self.storage_dict[storage]['geometry']:
  3873. self.storage_dict[storage]['geometry'].remove(geo_el)
  3874. except KeyError:
  3875. pass
  3876. if geo_el in self.selected:
  3877. self.selected.remove(geo_el) # TODO: Check performance
  3878. def delete_utility_geometry(self):
  3879. # for_deletion = [shape for shape in self.shape_buffer if shape.utility]
  3880. # for_deletion = [shape for shape in self.storage.get_objects() if shape.utility]
  3881. for_deletion = [geo_el for geo_el in self.utility]
  3882. for geo_el in for_deletion:
  3883. self.delete_shape(geo_el)
  3884. self.tool_shape.clear(update=True)
  3885. self.tool_shape.redraw()
  3886. def on_delete_btn(self):
  3887. self.delete_selected()
  3888. self.plot_all()
  3889. def select_tool(self, toolname):
  3890. """
  3891. Selects a drawing tool. Impacts the object and GUI.
  3892. :param toolname: Name of the tool.
  3893. :return: None
  3894. """
  3895. self.tools_gerber[toolname]["button"].setChecked(True)
  3896. self.on_tool_select(toolname)
  3897. def set_selected(self, geo_el):
  3898. # Remove and add to the end.
  3899. if geo_el in self.selected:
  3900. self.selected.remove(geo_el)
  3901. self.selected.append(geo_el)
  3902. def set_unselected(self, geo_el):
  3903. if geo_el in self.selected:
  3904. self.selected.remove(geo_el)
  3905. def on_array_type_combo(self):
  3906. if self.array_type_combo.currentIndex() == 0:
  3907. self.array_circular_frame.hide()
  3908. self.array_linear_frame.show()
  3909. else:
  3910. self.delete_utility_geometry()
  3911. self.array_circular_frame.show()
  3912. self.array_linear_frame.hide()
  3913. self.app.inform.emit(_("Click on the circular array Center position"))
  3914. def on_linear_angle_radio(self):
  3915. val = self.pad_axis_radio.get_value()
  3916. if val == 'A':
  3917. self.linear_angle_spinner.show()
  3918. self.linear_angle_label.show()
  3919. else:
  3920. self.linear_angle_spinner.hide()
  3921. self.linear_angle_label.hide()
  3922. def on_copy_button(self):
  3923. self.select_tool('copy')
  3924. return
  3925. def on_move_button(self):
  3926. self.select_tool('move')
  3927. return
  3928. def on_pad_add(self):
  3929. self.select_tool('pad')
  3930. def on_pad_add_array(self):
  3931. self.select_tool('array')
  3932. def on_track_add(self):
  3933. self.select_tool('track')
  3934. def on_region_add(self):
  3935. self.select_tool('region')
  3936. def on_poligonize(self):
  3937. self.select_tool('poligonize')
  3938. def on_disc_add(self):
  3939. self.select_tool('disc')
  3940. def on_add_semidisc(self):
  3941. self.select_tool('semidisc')
  3942. def on_buffer(self):
  3943. buff_value = 0.01
  3944. log.debug("FlatCAMGrbEditor.on_buffer()")
  3945. try:
  3946. buff_value = float(self.buffer_distance_entry.get_value())
  3947. except ValueError:
  3948. # try to convert comma to decimal point. if it's still not working error message and return
  3949. try:
  3950. buff_value = float(self.buffer_distance_entry.get_value().replace(',', '.'))
  3951. self.buffer_distance_entry.set_value(buff_value)
  3952. except ValueError:
  3953. self.app.inform.emit('[WARNING_NOTCL] %s' %
  3954. _("Buffer distance value is missing or wrong format. Add it and retry."))
  3955. return
  3956. # the cb index start from 0 but the join styles for the buffer start from 1 therefore the adjustment
  3957. # I populated the combobox such that the index coincide with the join styles value (which is really an INT)
  3958. join_style = self.buffer_corner_cb.currentIndex() + 1
  3959. def buffer_recursion(geom_el, selection):
  3960. if type(geom_el) == list:
  3961. geoms = list()
  3962. for local_geom in geom_el:
  3963. geoms.append(buffer_recursion(local_geom, selection=selection))
  3964. return geoms
  3965. else:
  3966. if geom_el in selection:
  3967. geometric_data = geom_el.geo
  3968. buffered_geom_el = dict()
  3969. if 'solid' in geometric_data:
  3970. buffered_geom_el['solid'] = geometric_data['solid'].buffer(buff_value, join_style=join_style)
  3971. if 'follow' in geometric_data:
  3972. buffered_geom_el['follow'] = geometric_data['follow'].buffer(buff_value, join_style=join_style)
  3973. if 'clear' in geometric_data:
  3974. buffered_geom_el['clear'] = geometric_data['clear'].buffer(buff_value, join_style=join_style)
  3975. return DrawToolShape(buffered_geom_el)
  3976. else:
  3977. return geom_el
  3978. if not self.apertures_table.selectedItems():
  3979. self.app.inform.emit('[WARNING_NOTCL] %s' %
  3980. _("No aperture to buffer. Select at least one aperture and try again."))
  3981. return
  3982. for x in self.apertures_table.selectedItems():
  3983. try:
  3984. apid = self.apertures_table.item(x.row(), 1).text()
  3985. temp_storage = deepcopy(buffer_recursion(self.storage_dict[apid]['geometry'], self.selected))
  3986. self.storage_dict[apid]['geometry'] = []
  3987. self.storage_dict[apid]['geometry'] = temp_storage
  3988. except Exception as e:
  3989. log.debug("FlatCAMGrbEditor.buffer() --> %s" % str(e))
  3990. self.app.inform.emit('[ERROR_NOTCL] %s\n%s' % (_("Failed."), str(traceback.print_exc())))
  3991. return
  3992. self.plot_all()
  3993. self.app.inform.emit('[success] %s' % _("Done. Buffer Tool completed."))
  3994. def on_scale(self):
  3995. scale_factor = 1.0
  3996. log.debug("FlatCAMGrbEditor.on_scale()")
  3997. try:
  3998. scale_factor = float(self.scale_factor_entry.get_value())
  3999. except ValueError:
  4000. # try to convert comma to decimal point. if it's still not working error message and return
  4001. try:
  4002. scale_factor = float(self.scale_factor_entry.get_value().replace(',', '.'))
  4003. self.scale_factor_entry.set_value(scale_factor)
  4004. except ValueError:
  4005. self.app.inform.emit('[WARNING_NOTCL] %s' %
  4006. _("Scale factor value is missing or wrong format. Add it and retry."))
  4007. return
  4008. def scale_recursion(geom_el, selection):
  4009. if type(geom_el) == list:
  4010. geoms = list()
  4011. for local_geom in geom_el:
  4012. geoms.append(scale_recursion(local_geom, selection=selection))
  4013. return geoms
  4014. else:
  4015. if geom_el in selection:
  4016. geometric_data = geom_el.geo
  4017. scaled_geom_el = dict()
  4018. if 'solid' in geometric_data:
  4019. scaled_geom_el['solid'] = affinity.scale(
  4020. geometric_data['solid'], scale_factor, scale_factor, origin='center'
  4021. )
  4022. if 'follow' in geometric_data:
  4023. scaled_geom_el['follow'] = affinity.scale(
  4024. geometric_data['follow'], scale_factor, scale_factor, origin='center'
  4025. )
  4026. if 'clear' in geometric_data:
  4027. scaled_geom_el['clear'] = affinity.scale(
  4028. geometric_data['clear'], scale_factor, scale_factor, origin='center'
  4029. )
  4030. return DrawToolShape(scaled_geom_el)
  4031. else:
  4032. return geom_el
  4033. if not self.apertures_table.selectedItems():
  4034. self.app.inform.emit('[WARNING_NOTCL] %s' %
  4035. _("No aperture to scale. Select at least one aperture and try again."))
  4036. return
  4037. for x in self.apertures_table.selectedItems():
  4038. try:
  4039. apid = self.apertures_table.item(x.row(), 1).text()
  4040. temp_storage = deepcopy(scale_recursion(self.storage_dict[apid]['geometry'], self.selected))
  4041. self.storage_dict[apid]['geometry'] = []
  4042. self.storage_dict[apid]['geometry'] = temp_storage
  4043. except Exception as e:
  4044. log.debug("FlatCAMGrbEditor.on_scale() --> %s" % str(e))
  4045. self.plot_all()
  4046. self.app.inform.emit('[success] %s' %
  4047. _("Done. Scale Tool completed."))
  4048. def on_markarea(self):
  4049. # clear previous marking
  4050. self.ma_annotation.clear(update=True)
  4051. self.units = self.app.defaults['units'].upper()
  4052. text = []
  4053. position = []
  4054. for apid in self.storage_dict:
  4055. if 'geometry' in self.storage_dict[apid]:
  4056. for geo_el in self.storage_dict[apid]['geometry']:
  4057. if 'solid' in geo_el.geo:
  4058. area = geo_el.geo['solid'].area
  4059. try:
  4060. upper_threshold_val = self.ma_upper_threshold_entry.get_value()
  4061. except Exception as e:
  4062. return
  4063. try:
  4064. lower_threshold_val = self.ma_lower_threshold_entry.get_value()
  4065. except Exception as e:
  4066. lower_threshold_val = 0.0
  4067. if float(upper_threshold_val) > area > float(lower_threshold_val):
  4068. current_pos = geo_el.geo['solid'].exterior.coords[-1]
  4069. text_elem = '%.*f' % (self.decimals, area)
  4070. text.append(text_elem)
  4071. position.append(current_pos)
  4072. self.geo_to_delete.append(geo_el)
  4073. if text:
  4074. self.ma_annotation.set(text=text, pos=position, visible=True,
  4075. font_size=self.app.defaults["cncjob_annotation_fontsize"],
  4076. color='#000000FF')
  4077. self.app.inform.emit('[success] %s' %
  4078. _("Polygons marked."))
  4079. else:
  4080. self.app.inform.emit('[WARNING_NOTCL] %s' %
  4081. _("No polygons were marked. None fit within the limits."))
  4082. def delete_marked_polygons(self):
  4083. for shape_sel in self.geo_to_delete:
  4084. self.delete_shape(shape_sel)
  4085. self.build_ui()
  4086. self.plot_all()
  4087. self.app.inform.emit('[success] %s' % _("Done. Apertures geometry deleted."))
  4088. def on_eraser(self):
  4089. self.select_tool('eraser')
  4090. def on_transform(self):
  4091. if type(self.active_tool) == FCTransform:
  4092. self.select_tool('select')
  4093. else:
  4094. self.select_tool('transform')
  4095. def hide_tool(self, tool_name):
  4096. # self.app.ui.notebook.setTabText(2, _("Tools"))
  4097. try:
  4098. if tool_name == 'all':
  4099. self.apertures_frame.hide()
  4100. if tool_name == 'select':
  4101. self.apertures_frame.show()
  4102. if tool_name == 'buffer' or tool_name == 'all':
  4103. self.buffer_tool_frame.hide()
  4104. if tool_name == 'scale' or tool_name == 'all':
  4105. self.scale_tool_frame.hide()
  4106. if tool_name == 'markarea' or tool_name == 'all':
  4107. self.ma_tool_frame.hide()
  4108. except Exception as e:
  4109. log.debug("FlatCAMGrbEditor.hide_tool() --> %s" % str(e))
  4110. self.app.ui.notebook.setCurrentWidget(self.app.ui.selected_tab)
  4111. class TransformEditorTool(FlatCAMTool):
  4112. """
  4113. Inputs to specify how to paint the selected polygons.
  4114. """
  4115. toolName = _("Transform Tool")
  4116. rotateName = _("Rotate")
  4117. skewName = _("Skew/Shear")
  4118. scaleName = _("Scale")
  4119. flipName = _("Mirror (Flip)")
  4120. offsetName = _("Offset")
  4121. def __init__(self, app, draw_app):
  4122. FlatCAMTool.__init__(self, app)
  4123. self.app = app
  4124. self.draw_app = draw_app
  4125. self.decimals = self.app.decimals
  4126. self.transform_lay = QtWidgets.QVBoxLayout()
  4127. self.layout.addLayout(self.transform_lay)
  4128. # Title
  4129. title_label = QtWidgets.QLabel("%s %s" % (_('Editor'), self.toolName))
  4130. title_label.setStyleSheet("""
  4131. QLabel
  4132. {
  4133. font-size: 16px;
  4134. font-weight: bold;
  4135. }
  4136. """)
  4137. self.transform_lay.addWidget(title_label)
  4138. self.empty_label = QtWidgets.QLabel("")
  4139. self.empty_label.setMinimumWidth(50)
  4140. self.empty_label1 = QtWidgets.QLabel("")
  4141. self.empty_label1.setMinimumWidth(70)
  4142. self.empty_label2 = QtWidgets.QLabel("")
  4143. self.empty_label2.setMinimumWidth(70)
  4144. self.empty_label3 = QtWidgets.QLabel("")
  4145. self.empty_label3.setMinimumWidth(70)
  4146. self.empty_label4 = QtWidgets.QLabel("")
  4147. self.empty_label4.setMinimumWidth(70)
  4148. self.transform_lay.addWidget(self.empty_label)
  4149. # Rotate Title
  4150. rotate_title_label = QtWidgets.QLabel("<font size=3><b>%s</b></font>" % self.rotateName)
  4151. self.transform_lay.addWidget(rotate_title_label)
  4152. # Layout
  4153. form_layout = QtWidgets.QFormLayout()
  4154. self.transform_lay.addLayout(form_layout)
  4155. form_child = QtWidgets.QHBoxLayout()
  4156. self.rotate_label = QtWidgets.QLabel(_("Angle:"))
  4157. self.rotate_label.setToolTip(
  4158. _("Angle for Rotation action, in degrees.\n"
  4159. "Float number between -360 and 359.\n"
  4160. "Positive numbers for CW motion.\n"
  4161. "Negative numbers for CCW motion.")
  4162. )
  4163. self.rotate_label.setMinimumWidth(50)
  4164. self.rotate_entry = FCDoubleSpinner()
  4165. self.rotate_entry.set_precision(self.decimals)
  4166. self.rotate_entry.set_range(-360.0000, 360.0000)
  4167. self.rotate_entry.setSingleStep(0.1)
  4168. self.rotate_entry.setWrapping(True)
  4169. self.rotate_button = FCButton()
  4170. self.rotate_button.set_value(_("Rotate"))
  4171. self.rotate_button.setToolTip(
  4172. _("Rotate the selected shape(s).\n"
  4173. "The point of reference is the middle of\n"
  4174. "the bounding box for all selected shapes.")
  4175. )
  4176. self.rotate_button.setMinimumWidth(60)
  4177. form_child.addWidget(self.rotate_entry)
  4178. form_child.addWidget(self.rotate_button)
  4179. form_layout.addRow(self.rotate_label, form_child)
  4180. self.transform_lay.addWidget(self.empty_label1)
  4181. # Skew Title
  4182. skew_title_label = QtWidgets.QLabel("<font size=3><b>%s</b></font>" % self.skewName)
  4183. self.transform_lay.addWidget(skew_title_label)
  4184. # Form Layout
  4185. form1_layout = QtWidgets.QFormLayout()
  4186. self.transform_lay.addLayout(form1_layout)
  4187. form1_child_1 = QtWidgets.QHBoxLayout()
  4188. form1_child_2 = QtWidgets.QHBoxLayout()
  4189. self.skewx_label = QtWidgets.QLabel(_("Angle X:"))
  4190. self.skewx_label.setToolTip(
  4191. _("Angle for Skew action, in degrees.\n"
  4192. "Float number between -360 and 359.")
  4193. )
  4194. self.skewx_label.setMinimumWidth(50)
  4195. self.skewx_entry = FCDoubleSpinner()
  4196. self.skewx_entry.set_precision(self.decimals)
  4197. self.skewx_entry.set_range(-360.0000, 360.0000)
  4198. self.skewx_entry.setSingleStep(0.1)
  4199. self.skewx_entry.setWrapping(True)
  4200. self.skewx_button = FCButton()
  4201. self.skewx_button.set_value(_("Skew X"))
  4202. self.skewx_button.setToolTip(
  4203. _("Skew/shear the selected shape(s).\n"
  4204. "The point of reference is the middle of\n"
  4205. "the bounding box for all selected shapes."))
  4206. self.skewx_button.setMinimumWidth(60)
  4207. self.skewy_label = QtWidgets.QLabel(_("Angle Y:"))
  4208. self.skewy_label.setToolTip(
  4209. _("Angle for Skew action, in degrees.\n"
  4210. "Float number between -360 and 359.")
  4211. )
  4212. self.skewy_label.setMinimumWidth(50)
  4213. self.skewy_entry = FCDoubleSpinner()
  4214. self.skewy_entry.set_precision(self.decimals)
  4215. self.skewy_entry.set_range(-360.0000, 360.0000)
  4216. self.skewy_entry.setSingleStep(0.1)
  4217. self.skewy_entry.setWrapping(True)
  4218. self.skewy_button = FCButton()
  4219. self.skewy_button.set_value(_("Skew Y"))
  4220. self.skewy_button.setToolTip(
  4221. _("Skew/shear the selected shape(s).\n"
  4222. "The point of reference is the middle of\n"
  4223. "the bounding box for all selected shapes."))
  4224. self.skewy_button.setMinimumWidth(60)
  4225. form1_child_1.addWidget(self.skewx_entry)
  4226. form1_child_1.addWidget(self.skewx_button)
  4227. form1_child_2.addWidget(self.skewy_entry)
  4228. form1_child_2.addWidget(self.skewy_button)
  4229. form1_layout.addRow(self.skewx_label, form1_child_1)
  4230. form1_layout.addRow(self.skewy_label, form1_child_2)
  4231. self.transform_lay.addWidget(self.empty_label2)
  4232. # Scale Title
  4233. scale_title_label = QtWidgets.QLabel("<font size=3><b>%s</b></font>" % self.scaleName)
  4234. self.transform_lay.addWidget(scale_title_label)
  4235. # Form Layout
  4236. form2_layout = QtWidgets.QFormLayout()
  4237. self.transform_lay.addLayout(form2_layout)
  4238. form2_child_1 = QtWidgets.QHBoxLayout()
  4239. form2_child_2 = QtWidgets.QHBoxLayout()
  4240. self.scalex_label = QtWidgets.QLabel(_("Factor X:"))
  4241. self.scalex_label.setToolTip(
  4242. _("Factor for Scale action over X axis.")
  4243. )
  4244. self.scalex_label.setMinimumWidth(50)
  4245. self.scalex_entry = FCDoubleSpinner()
  4246. self.scalex_entry.set_precision(self.decimals)
  4247. self.scalex_entry.set_range(0.0000, 9999.9999)
  4248. self.scalex_entry.setSingleStep(0.1)
  4249. self.scalex_entry.setWrapping(True)
  4250. self.scalex_button = FCButton()
  4251. self.scalex_button.set_value(_("Scale X"))
  4252. self.scalex_button.setToolTip(
  4253. _("Scale the selected shape(s).\n"
  4254. "The point of reference depends on \n"
  4255. "the Scale reference checkbox state."))
  4256. self.scalex_button.setMinimumWidth(60)
  4257. self.scaley_label = QtWidgets.QLabel(_("Factor Y:"))
  4258. self.scaley_label.setToolTip(
  4259. _("Factor for Scale action over Y axis.")
  4260. )
  4261. self.scaley_label.setMinimumWidth(50)
  4262. self.scaley_entry = FCDoubleSpinner()
  4263. self.scaley_entry.set_precision(self.decimals)
  4264. self.scaley_entry.set_range(0.0000, 9999.9999)
  4265. self.scaley_entry.setSingleStep(0.1)
  4266. self.scaley_entry.setWrapping(True)
  4267. self.scaley_button = FCButton()
  4268. self.scaley_button.set_value(_("Scale Y"))
  4269. self.scaley_button.setToolTip(
  4270. _("Scale the selected shape(s).\n"
  4271. "The point of reference depends on \n"
  4272. "the Scale reference checkbox state."))
  4273. self.scaley_button.setMinimumWidth(60)
  4274. self.scale_link_cb = FCCheckBox()
  4275. self.scale_link_cb.set_value(True)
  4276. self.scale_link_cb.setText(_("Link"))
  4277. self.scale_link_cb.setToolTip(
  4278. _("Scale the selected shape(s)\n"
  4279. "using the Scale Factor X for both axis."))
  4280. self.scale_link_cb.setMinimumWidth(50)
  4281. self.scale_zero_ref_cb = FCCheckBox()
  4282. self.scale_zero_ref_cb.set_value(True)
  4283. self.scale_zero_ref_cb.setText(_("Scale Reference"))
  4284. self.scale_zero_ref_cb.setToolTip(
  4285. _("Scale the selected shape(s)\n"
  4286. "using the origin reference when checked,\n"
  4287. "and the center of the biggest bounding box\n"
  4288. "of the selected shapes when unchecked."))
  4289. form2_child_1.addWidget(self.scalex_entry)
  4290. form2_child_1.addWidget(self.scalex_button)
  4291. form2_child_2.addWidget(self.scaley_entry)
  4292. form2_child_2.addWidget(self.scaley_button)
  4293. form2_layout.addRow(self.scalex_label, form2_child_1)
  4294. form2_layout.addRow(self.scaley_label, form2_child_2)
  4295. form2_layout.addRow(self.scale_link_cb, self.scale_zero_ref_cb)
  4296. self.ois_scale = OptionalInputSection(self.scale_link_cb, [self.scaley_entry, self.scaley_button],
  4297. logic=False)
  4298. self.transform_lay.addWidget(self.empty_label3)
  4299. # Offset Title
  4300. offset_title_label = QtWidgets.QLabel("<font size=3><b>%s</b></font>" % self.offsetName)
  4301. self.transform_lay.addWidget(offset_title_label)
  4302. # Form Layout
  4303. form3_layout = QtWidgets.QFormLayout()
  4304. self.transform_lay.addLayout(form3_layout)
  4305. form3_child_1 = QtWidgets.QHBoxLayout()
  4306. form3_child_2 = QtWidgets.QHBoxLayout()
  4307. self.offx_label = QtWidgets.QLabel(_("Value X:"))
  4308. self.offx_label.setToolTip(
  4309. _("Value for Offset action on X axis.")
  4310. )
  4311. self.offx_label.setMinimumWidth(50)
  4312. self.offx_entry = FCDoubleSpinner()
  4313. self.offx_entry.set_precision(self.decimals)
  4314. self.offx_entry.set_range(-9999.9999, 9999.9999)
  4315. self.offx_entry.setSingleStep(0.1)
  4316. self.offx_entry.setWrapping(True)
  4317. self.offx_button = FCButton()
  4318. self.offx_button.set_value(_("Offset X"))
  4319. self.offx_button.setToolTip(
  4320. _("Offset the selected shape(s).\n"
  4321. "The point of reference is the middle of\n"
  4322. "the bounding box for all selected shapes.\n")
  4323. )
  4324. self.offx_button.setMinimumWidth(60)
  4325. self.offy_label = QtWidgets.QLabel(_("Value Y:"))
  4326. self.offy_label.setToolTip(
  4327. _("Value for Offset action on Y axis.")
  4328. )
  4329. self.offy_label.setMinimumWidth(50)
  4330. self.offy_entry = FCDoubleSpinner()
  4331. self.offy_entry.set_precision(self.decimals)
  4332. self.offy_entry.set_range(-9999.9999, 9999.9999)
  4333. self.offy_entry.setSingleStep(0.1)
  4334. self.offy_entry.setWrapping(True)
  4335. self.offy_button = FCButton()
  4336. self.offy_button.set_value(_("Offset Y"))
  4337. self.offy_button.setToolTip(
  4338. _("Offset the selected shape(s).\n"
  4339. "The point of reference is the middle of\n"
  4340. "the bounding box for all selected shapes.\n")
  4341. )
  4342. self.offy_button.setMinimumWidth(60)
  4343. form3_child_1.addWidget(self.offx_entry)
  4344. form3_child_1.addWidget(self.offx_button)
  4345. form3_child_2.addWidget(self.offy_entry)
  4346. form3_child_2.addWidget(self.offy_button)
  4347. form3_layout.addRow(self.offx_label, form3_child_1)
  4348. form3_layout.addRow(self.offy_label, form3_child_2)
  4349. self.transform_lay.addWidget(self.empty_label4)
  4350. # Flip Title
  4351. flip_title_label = QtWidgets.QLabel("<font size=3><b>%s</b></font>" % self.flipName)
  4352. self.transform_lay.addWidget(flip_title_label)
  4353. # Form Layout
  4354. form4_layout = QtWidgets.QFormLayout()
  4355. form4_child_hlay = QtWidgets.QHBoxLayout()
  4356. self.transform_lay.addLayout(form4_child_hlay)
  4357. self.transform_lay.addLayout(form4_layout)
  4358. form4_child_1 = QtWidgets.QHBoxLayout()
  4359. self.flipx_button = FCButton()
  4360. self.flipx_button.set_value(_("Flip on X"))
  4361. self.flipx_button.setToolTip(
  4362. _("Flip the selected shape(s) over the X axis.\n"
  4363. "Does not create a new shape.")
  4364. )
  4365. self.flipy_button = FCButton()
  4366. self.flipy_button.set_value(_("Flip on Y"))
  4367. self.flipy_button.setToolTip(
  4368. _("Flip the selected shape(s) over the X axis.\n"
  4369. "Does not create a new shape.")
  4370. )
  4371. self.flip_ref_cb = FCCheckBox()
  4372. self.flip_ref_cb.set_value(True)
  4373. self.flip_ref_cb.setText(_("Ref Pt"))
  4374. self.flip_ref_cb.setToolTip(
  4375. _("Flip the selected shape(s)\n"
  4376. "around the point in Point Entry Field.\n"
  4377. "\n"
  4378. "The point coordinates can be captured by\n"
  4379. "left click on canvas together with pressing\n"
  4380. "SHIFT key. \n"
  4381. "Then click Add button to insert coordinates.\n"
  4382. "Or enter the coords in format (x, y) in the\n"
  4383. "Point Entry field and click Flip on X(Y)")
  4384. )
  4385. self.flip_ref_cb.setMinimumWidth(50)
  4386. self.flip_ref_label = QtWidgets.QLabel(_("Point:"))
  4387. self.flip_ref_label.setToolTip(
  4388. _("Coordinates in format (x, y) used as reference for mirroring.\n"
  4389. "The 'x' in (x, y) will be used when using Flip on X and\n"
  4390. "the 'y' in (x, y) will be used when using Flip on Y.")
  4391. )
  4392. self.flip_ref_label.setMinimumWidth(50)
  4393. self.flip_ref_entry = EvalEntry2("(0, 0)")
  4394. self.flip_ref_entry.setAlignment(QtCore.Qt.AlignRight | QtCore.Qt.AlignVCenter)
  4395. # self.flip_ref_entry.setFixedWidth(60)
  4396. self.flip_ref_button = FCButton()
  4397. self.flip_ref_button.set_value(_("Add"))
  4398. self.flip_ref_button.setToolTip(
  4399. _("The point coordinates can be captured by\n"
  4400. "left click on canvas together with pressing\n"
  4401. "SHIFT key. Then click Add button to insert.")
  4402. )
  4403. self.flip_ref_button.setMinimumWidth(60)
  4404. form4_child_hlay.addWidget(self.flipx_button)
  4405. form4_child_hlay.addWidget(self.flipy_button)
  4406. form4_child_1.addWidget(self.flip_ref_entry)
  4407. form4_child_1.addWidget(self.flip_ref_button)
  4408. form4_layout.addRow(self.flip_ref_cb)
  4409. form4_layout.addRow(self.flip_ref_label, form4_child_1)
  4410. self.ois_flip = OptionalInputSection(self.flip_ref_cb,
  4411. [self.flip_ref_entry, self.flip_ref_button], logic=True)
  4412. self.transform_lay.addStretch()
  4413. # Signals
  4414. self.rotate_button.clicked.connect(self.on_rotate)
  4415. self.skewx_button.clicked.connect(self.on_skewx)
  4416. self.skewy_button.clicked.connect(self.on_skewy)
  4417. self.scalex_button.clicked.connect(self.on_scalex)
  4418. self.scaley_button.clicked.connect(self.on_scaley)
  4419. self.offx_button.clicked.connect(self.on_offx)
  4420. self.offy_button.clicked.connect(self.on_offy)
  4421. self.flipx_button.clicked.connect(self.on_flipx)
  4422. self.flipy_button.clicked.connect(self.on_flipy)
  4423. self.flip_ref_button.clicked.connect(self.on_flip_add_coords)
  4424. self.rotate_entry.editingFinished.connect(self.on_rotate)
  4425. self.skewx_entry.editingFinished.connect(self.on_skewx)
  4426. self.skewy_entry.editingFinished.connect(self.on_skewy)
  4427. self.scalex_entry.editingFinished.connect(self.on_scalex)
  4428. self.scaley_entry.editingFinished.connect(self.on_scaley)
  4429. self.offx_entry.editingFinished.connect(self.on_offx)
  4430. self.offy_entry.editingFinished.connect(self.on_offy)
  4431. self.set_tool_ui()
  4432. def run(self, toggle=True):
  4433. self.app.report_usage("Geo Editor Transform Tool()")
  4434. # if the splitter is hidden, display it, else hide it but only if the current widget is the same
  4435. if self.app.ui.splitter.sizes()[0] == 0:
  4436. self.app.ui.splitter.setSizes([1, 1])
  4437. if toggle:
  4438. try:
  4439. if self.app.ui.tool_scroll_area.widget().objectName() == self.toolName:
  4440. self.app.ui.notebook.setCurrentWidget(self.app.ui.selected_tab)
  4441. else:
  4442. self.app.ui.notebook.setCurrentWidget(self.app.ui.tool_tab)
  4443. except AttributeError:
  4444. pass
  4445. FlatCAMTool.run(self)
  4446. self.set_tool_ui()
  4447. self.app.ui.notebook.setTabText(2, _("Transform Tool"))
  4448. def install(self, icon=None, separator=None, **kwargs):
  4449. FlatCAMTool.install(self, icon, separator, shortcut='ALT+T', **kwargs)
  4450. def set_tool_ui(self):
  4451. # Initialize form
  4452. if self.app.defaults["tools_transform_rotate"]:
  4453. self.rotate_entry.set_value(self.app.defaults["tools_transform_rotate"])
  4454. else:
  4455. self.rotate_entry.set_value(0.0)
  4456. if self.app.defaults["tools_transform_skew_x"]:
  4457. self.skewx_entry.set_value(self.app.defaults["tools_transform_skew_x"])
  4458. else:
  4459. self.skewx_entry.set_value(0.0)
  4460. if self.app.defaults["tools_transform_skew_y"]:
  4461. self.skewy_entry.set_value(self.app.defaults["tools_transform_skew_y"])
  4462. else:
  4463. self.skewy_entry.set_value(0.0)
  4464. if self.app.defaults["tools_transform_scale_x"]:
  4465. self.scalex_entry.set_value(self.app.defaults["tools_transform_scale_x"])
  4466. else:
  4467. self.scalex_entry.set_value(1.0)
  4468. if self.app.defaults["tools_transform_scale_y"]:
  4469. self.scaley_entry.set_value(self.app.defaults["tools_transform_scale_y"])
  4470. else:
  4471. self.scaley_entry.set_value(1.0)
  4472. if self.app.defaults["tools_transform_scale_link"]:
  4473. self.scale_link_cb.set_value(self.app.defaults["tools_transform_scale_link"])
  4474. else:
  4475. self.scale_link_cb.set_value(True)
  4476. if self.app.defaults["tools_transform_scale_reference"]:
  4477. self.scale_zero_ref_cb.set_value(self.app.defaults["tools_transform_scale_reference"])
  4478. else:
  4479. self.scale_zero_ref_cb.set_value(True)
  4480. if self.app.defaults["tools_transform_offset_x"]:
  4481. self.offx_entry.set_value(self.app.defaults["tools_transform_offset_x"])
  4482. else:
  4483. self.offx_entry.set_value(0.0)
  4484. if self.app.defaults["tools_transform_offset_y"]:
  4485. self.offy_entry.set_value(self.app.defaults["tools_transform_offset_y"])
  4486. else:
  4487. self.offy_entry.set_value(0.0)
  4488. if self.app.defaults["tools_transform_mirror_reference"]:
  4489. self.flip_ref_cb.set_value(self.app.defaults["tools_transform_mirror_reference"])
  4490. else:
  4491. self.flip_ref_cb.set_value(False)
  4492. if self.app.defaults["tools_transform_mirror_point"]:
  4493. self.flip_ref_entry.set_value(self.app.defaults["tools_transform_mirror_point"])
  4494. else:
  4495. self.flip_ref_entry.set_value((0, 0))
  4496. def template(self):
  4497. if not self.fcdraw.selected:
  4498. self.app.inform.emit('[WARNING_NOTCL] %s' %
  4499. _("Transformation cancelled. No shape selected."))
  4500. return
  4501. self.draw_app.select_tool("select")
  4502. self.app.ui.notebook.setTabText(2, "Tools")
  4503. self.app.ui.notebook.setCurrentWidget(self.app.ui.project_tab)
  4504. self.app.ui.splitter.setSizes([0, 1])
  4505. def on_rotate(self, sig=None, val=None):
  4506. if val:
  4507. value = val
  4508. else:
  4509. value = float(self.rotate_entry.get_value())
  4510. self.app.worker_task.emit({'fcn': self.on_rotate_action,
  4511. 'params': [value]})
  4512. # self.on_rotate_action(value)
  4513. return
  4514. def on_flipx(self):
  4515. # self.on_flip("Y")
  4516. axis = 'Y'
  4517. self.app.worker_task.emit({'fcn': self.on_flip,
  4518. 'params': [axis]})
  4519. return
  4520. def on_flipy(self):
  4521. # self.on_flip("X")
  4522. axis = 'X'
  4523. self.app.worker_task.emit({'fcn': self.on_flip,
  4524. 'params': [axis]})
  4525. return
  4526. def on_flip_add_coords(self):
  4527. val = self.app.clipboard.text()
  4528. self.flip_ref_entry.set_value(val)
  4529. def on_skewx(self, sig=None, val=None):
  4530. """
  4531. :param sig: here we can get the value passed by the signal
  4532. :param val: the amount to skew on the X axis
  4533. :return:
  4534. """
  4535. if val:
  4536. value = val
  4537. else:
  4538. value = float(self.skewx_entry.get_value())
  4539. # self.on_skew("X", value)
  4540. axis = 'X'
  4541. self.app.worker_task.emit({'fcn': self.on_skew,
  4542. 'params': [axis, value]})
  4543. return
  4544. def on_skewy(self, sig=None, val=None):
  4545. """
  4546. :param sig: here we can get the value passed by the signal
  4547. :param val: the amount to sckew on the Y axis
  4548. :return:
  4549. """
  4550. if val:
  4551. value = val
  4552. else:
  4553. value = float(self.skewy_entry.get_value())
  4554. # self.on_skew("Y", value)
  4555. axis = 'Y'
  4556. self.app.worker_task.emit({'fcn': self.on_skew,
  4557. 'params': [axis, value]})
  4558. return
  4559. def on_scalex(self, sig=None, val=None):
  4560. """
  4561. :param sig: here we can get the value passed by the signal
  4562. :param val: the amount to scale on the X axis
  4563. :return:
  4564. """
  4565. if val:
  4566. x_value = val
  4567. else:
  4568. x_value = float(self.scalex_entry.get_value())
  4569. # scaling to zero has no sense so we remove it, because scaling with 1 does nothing
  4570. if x_value == 0:
  4571. x_value = 1
  4572. if self.scale_link_cb.get_value():
  4573. y_value = x_value
  4574. else:
  4575. y_value = 1
  4576. axis = 'X'
  4577. point = (0, 0)
  4578. if self.scale_zero_ref_cb.get_value():
  4579. self.app.worker_task.emit({'fcn': self.on_scale,
  4580. 'params': [axis, x_value, y_value, point]})
  4581. # self.on_scale("X", xvalue, yvalue, point=(0,0))
  4582. else:
  4583. # self.on_scale("X", xvalue, yvalue)
  4584. self.app.worker_task.emit({'fcn': self.on_scale,
  4585. 'params': [axis, x_value, y_value]})
  4586. def on_scaley(self, sig=None, val=None):
  4587. """
  4588. :param sig: here we can get the value passed by the signal
  4589. :param val: the amount to scale on the Y axis
  4590. :return:
  4591. """
  4592. x_value = 1
  4593. if val:
  4594. y_value = val
  4595. else:
  4596. y_value = float(self.scaley_entry.get_value())
  4597. # scaling to zero has no sense so we remove it, because scaling with 1 does nothing
  4598. if y_value == 0:
  4599. y_value = 1
  4600. axis = 'Y'
  4601. point = (0, 0)
  4602. if self.scale_zero_ref_cb.get_value():
  4603. self.app.worker_task.emit({'fcn': self.on_scale,
  4604. 'params': [axis, x_value, y_value, point]})
  4605. # self.on_scale("Y", xvalue, yvalue, point=(0,0))
  4606. else:
  4607. # self.on_scale("Y", xvalue, yvalue)
  4608. self.app.worker_task.emit({'fcn': self.on_scale,
  4609. 'params': [axis, x_value, y_value]})
  4610. return
  4611. def on_offx(self, sig=None, val=None):
  4612. """
  4613. :param sig: here we can get the value passed by the signal
  4614. :param val: the amount to offset on the X axis
  4615. :return:
  4616. """
  4617. if val:
  4618. value = val
  4619. else:
  4620. value = float(self.offx_entry.get_value())
  4621. # self.on_offset("X", value)
  4622. axis = 'X'
  4623. self.app.worker_task.emit({'fcn': self.on_offset,
  4624. 'params': [axis, value]})
  4625. def on_offy(self, sig=None, val=None):
  4626. """
  4627. :param sig: here we can get the value passed by the signal
  4628. :param val: the amount to offset on the Y axis
  4629. :return:
  4630. """
  4631. if val:
  4632. value = val
  4633. else:
  4634. value = float(self.offy_entry.get_value())
  4635. # self.on_offset("Y", value)
  4636. axis = 'Y'
  4637. self.app.worker_task.emit({'fcn': self.on_offset,
  4638. 'params': [axis, value]})
  4639. return
  4640. def on_rotate_action(self, num):
  4641. """
  4642. :param num: the angle by which to rotate
  4643. :return:
  4644. """
  4645. elem_list = self.draw_app.selected
  4646. xminlist = []
  4647. yminlist = []
  4648. xmaxlist = []
  4649. ymaxlist = []
  4650. if not elem_list:
  4651. self.app.inform.emit('[WARNING_NOTCL] %s' %
  4652. _("No shape selected. Please Select a shape to rotate!"))
  4653. return
  4654. with self.app.proc_container.new(_("Appying Rotate")):
  4655. try:
  4656. # first get a bounding box to fit all; we use only the 'solids' as those should provide the biggest
  4657. # bounding box
  4658. for el_shape in elem_list:
  4659. el = el_shape.geo
  4660. if 'solid' in el:
  4661. xmin, ymin, xmax, ymax = el['solid'].bounds
  4662. xminlist.append(xmin)
  4663. yminlist.append(ymin)
  4664. xmaxlist.append(xmax)
  4665. ymaxlist.append(ymax)
  4666. # get the minimum x,y and maximum x,y for all objects selected
  4667. xminimal = min(xminlist)
  4668. yminimal = min(yminlist)
  4669. xmaximal = max(xmaxlist)
  4670. ymaximal = max(ymaxlist)
  4671. self.app.progress.emit(20)
  4672. px = 0.5 * (xminimal + xmaximal)
  4673. py = 0.5 * (yminimal + ymaximal)
  4674. for sel_el_shape in elem_list:
  4675. sel_el = sel_el_shape.geo
  4676. if 'solid' in sel_el:
  4677. sel_el['solid'] = affinity.rotate(sel_el['solid'], angle=-num, origin=(px, py))
  4678. if 'follow' in sel_el:
  4679. sel_el['follow'] = affinity.rotate(sel_el['follow'], angle=-num, origin=(px, py))
  4680. if 'clear' in sel_el:
  4681. sel_el['clear'] = affinity.rotate(sel_el['clear'], angle=-num, origin=(px, py))
  4682. self.draw_app.plot_all()
  4683. self.app.inform.emit('[success] %s' %
  4684. _("Done. Rotate completed."))
  4685. self.app.progress.emit(100)
  4686. except Exception as e:
  4687. self.app.inform.emit('[ERROR_NOTCL] %s: %s' %
  4688. (_("Rotation action was not executed."), str(e)))
  4689. return
  4690. def on_flip(self, axis):
  4691. """
  4692. :param axis: axis to be used as reference for mirroring(flip)
  4693. :return:
  4694. """
  4695. elem_list = self.draw_app.selected
  4696. xminlist = []
  4697. yminlist = []
  4698. xmaxlist = []
  4699. ymaxlist = []
  4700. if not elem_list:
  4701. self.app.inform.emit('[WARNING_NOTCL] %s' %
  4702. _("No shape selected. Please Select a shape to flip!"))
  4703. return
  4704. with self.app.proc_container.new(_("Applying Flip")):
  4705. try:
  4706. # get mirroring coords from the point entry
  4707. if self.flip_ref_cb.isChecked():
  4708. px, py = eval('{}'.format(self.flip_ref_entry.text()))
  4709. # get mirroing coords from the center of an all-enclosing bounding box
  4710. else:
  4711. # first get a bounding box to fit all; we use only the 'solids' as those should provide the biggest
  4712. # bounding box
  4713. for el_shape in elem_list:
  4714. el = el_shape.geo
  4715. if 'solid' in el:
  4716. xmin, ymin, xmax, ymax = el['solid'].bounds
  4717. xminlist.append(xmin)
  4718. yminlist.append(ymin)
  4719. xmaxlist.append(xmax)
  4720. ymaxlist.append(ymax)
  4721. # get the minimum x,y and maximum x,y for all objects selected
  4722. xminimal = min(xminlist)
  4723. yminimal = min(yminlist)
  4724. xmaximal = max(xmaxlist)
  4725. ymaximal = max(ymaxlist)
  4726. px = 0.5 * (xminimal + xmaximal)
  4727. py = 0.5 * (yminimal + ymaximal)
  4728. self.app.progress.emit(20)
  4729. # execute mirroring
  4730. for sel_el_shape in elem_list:
  4731. sel_el = sel_el_shape.geo
  4732. if axis is 'X':
  4733. if 'solid' in sel_el:
  4734. sel_el['solid'] = affinity.scale(sel_el['solid'], xfact=1, yfact=-1, origin=(px, py))
  4735. if 'follow' in sel_el:
  4736. sel_el['follow'] = affinity.scale(sel_el['follow'], xfact=1, yfact=-1, origin=(px, py))
  4737. if 'clear' in sel_el:
  4738. sel_el['clear'] = affinity.scale(sel_el['clear'], xfact=1, yfact=-1, origin=(px, py))
  4739. self.app.inform.emit('[success] %s...' %
  4740. _('Flip on the Y axis done'))
  4741. elif axis is 'Y':
  4742. if 'solid' in sel_el:
  4743. sel_el['solid'] = affinity.scale(sel_el['solid'], xfact=-1, yfact=1, origin=(px, py))
  4744. if 'follow' in sel_el:
  4745. sel_el['follow'] = affinity.scale(sel_el['follow'], xfact=-1, yfact=1, origin=(px, py))
  4746. if 'clear' in sel_el:
  4747. sel_el['clear'] = affinity.scale(sel_el['clear'], xfact=-1, yfact=1, origin=(px, py))
  4748. self.app.inform.emit('[success] %s...' %
  4749. _('Flip on the X axis done'))
  4750. self.draw_app.plot_all()
  4751. self.app.progress.emit(100)
  4752. except Exception as e:
  4753. self.app.inform.emit('[ERROR_NOTCL] %s: %s' %
  4754. (_("Flip action was not executed."), str(e)))
  4755. return
  4756. def on_skew(self, axis, num):
  4757. """
  4758. :param axis: axis by which to do the skeweing
  4759. :param num: angle value for skew
  4760. :return:
  4761. """
  4762. elem_list = self.draw_app.selected
  4763. xminlist = []
  4764. yminlist = []
  4765. if not elem_list:
  4766. self.app.inform.emit('[WARNING_NOTCL] %s' %
  4767. _("No shape selected. Please Select a shape to shear/skew!"))
  4768. return
  4769. else:
  4770. with self.app.proc_container.new(_("Applying Skew")):
  4771. try:
  4772. # first get a bounding box to fit all; we use only the 'solids' as those should provide the biggest
  4773. # bounding box
  4774. for el_shape in elem_list:
  4775. el = el_shape.geo
  4776. if 'solid' in el:
  4777. xmin, ymin, xmax, ymax = el['solid'].bounds
  4778. xminlist.append(xmin)
  4779. yminlist.append(ymin)
  4780. # get the minimum x,y and maximum x,y for all objects selected
  4781. xminimal = min(xminlist)
  4782. yminimal = min(yminlist)
  4783. self.app.progress.emit(20)
  4784. for sel_el_shape in elem_list:
  4785. sel_el = sel_el_shape.geo
  4786. if axis is 'X':
  4787. if 'solid' in sel_el:
  4788. sel_el['solid'] = affinity.skew(sel_el['solid'], num, 0, origin=(xminimal, yminimal))
  4789. if 'follow' in sel_el:
  4790. sel_el['follow'] = affinity.skew(sel_el['follow'], num, 0, origin=(xminimal, yminimal))
  4791. if 'clear' in sel_el:
  4792. sel_el['clear'] = affinity.skew(sel_el['clear'], num, 0, origin=(xminimal, yminimal))
  4793. elif axis is 'Y':
  4794. if 'solid' in sel_el:
  4795. sel_el['solid'] = affinity.skew(sel_el['solid'], 0, num, origin=(xminimal, yminimal))
  4796. if 'follow' in sel_el:
  4797. sel_el['follow'] = affinity.skew(sel_el['follow'], 0, num, origin=(xminimal, yminimal))
  4798. if 'clear' in sel_el:
  4799. sel_el['clear'] = affinity.skew(sel_el['clear'], 0, num, origin=(xminimal, yminimal))
  4800. self.draw_app.plot_all()
  4801. if str(axis) == 'X':
  4802. self.app.inform.emit('[success] %s...' % _('Skew on the X axis done'))
  4803. else:
  4804. self.app.inform.emit('[success] %s...' % _('Skew on the Y axis done'))
  4805. self.app.progress.emit(100)
  4806. except Exception as e:
  4807. self.app.inform.emit('[ERROR_NOTCL] %s: %s' % (_("Skew action was not executed."), str(e)))
  4808. return
  4809. def on_scale(self, axis, xfactor, yfactor, point=None):
  4810. """
  4811. :param axis: axis by which to scale
  4812. :param xfactor: the scale factor on X axis
  4813. :param yfactor: the scale factor on Y axis
  4814. :param point: point of reference for scaling
  4815. :return:
  4816. """
  4817. elem_list = self.draw_app.selected
  4818. xminlist = []
  4819. yminlist = []
  4820. xmaxlist = []
  4821. ymaxlist = []
  4822. if not elem_list:
  4823. self.app.inform.emit('[WARNING_NOTCL] %s' %
  4824. _("No shape selected. Please Select a shape to scale!"))
  4825. return
  4826. else:
  4827. with self.app.proc_container.new(_("Applying Scale")):
  4828. try:
  4829. # first get a bounding box to fit all; we use only the 'solids' as those should provide the biggest
  4830. # bounding box
  4831. for el_shape in elem_list:
  4832. el = el_shape.geo
  4833. if 'solid' in el:
  4834. xmin, ymin, xmax, ymax = el['solid'].bounds
  4835. xminlist.append(xmin)
  4836. yminlist.append(ymin)
  4837. xmaxlist.append(xmax)
  4838. ymaxlist.append(ymax)
  4839. # get the minimum x,y and maximum x,y for all objects selected
  4840. xminimal = min(xminlist)
  4841. yminimal = min(yminlist)
  4842. xmaximal = max(xmaxlist)
  4843. ymaximal = max(ymaxlist)
  4844. self.app.progress.emit(20)
  4845. if point is None:
  4846. px = 0.5 * (xminimal + xmaximal)
  4847. py = 0.5 * (yminimal + ymaximal)
  4848. else:
  4849. px = 0
  4850. py = 0
  4851. for sel_el_shape in elem_list:
  4852. sel_el = sel_el_shape.geo
  4853. if 'solid' in sel_el:
  4854. sel_el['solid'] = affinity.scale(sel_el['solid'], xfactor, yfactor, origin=(px, py))
  4855. if 'follow' in sel_el:
  4856. sel_el['follow'] = affinity.scale(sel_el['follow'], xfactor, yfactor, origin=(px, py))
  4857. if 'clear' in sel_el:
  4858. sel_el['clear'] = affinity.scale(sel_el['clear'], xfactor, yfactor, origin=(px, py))
  4859. self.draw_app.plot_all()
  4860. if str(axis) == 'X':
  4861. self.app.inform.emit('[success] %s...' % _('Scale on the X axis done'))
  4862. else:
  4863. self.app.inform.emit('[success] %s...' % _('Scale on the Y axis done'))
  4864. except Exception as e:
  4865. self.app.inform.emit('[ERROR_NOTCL] %s: %s' % (_("Scale action was not executed."), str(e)))
  4866. return
  4867. def on_offset(self, axis, num):
  4868. """
  4869. :param axis: axis to be used as reference for offset
  4870. :param num: the amount by which to do the offset
  4871. :return:
  4872. """
  4873. elem_list = self.draw_app.selected
  4874. if not elem_list:
  4875. self.app.inform.emit('[WARNING_NOTCL] %s' %
  4876. _("No shape selected. Please Select a shape to offset!"))
  4877. return
  4878. else:
  4879. with self.app.proc_container.new(_("Applying Offset")):
  4880. try:
  4881. for sel_el_shape in elem_list:
  4882. sel_el = sel_el_shape.geo
  4883. if axis is 'X':
  4884. if 'solid' in sel_el:
  4885. sel_el['solid'] = affinity.translate(sel_el['solid'], num, 0)
  4886. if 'follow' in sel_el:
  4887. sel_el['follow'] = affinity.translate(sel_el['follow'], num, 0)
  4888. if 'clear' in sel_el:
  4889. sel_el['clear'] = affinity.translate(sel_el['clear'], num, 0)
  4890. elif axis is 'Y':
  4891. if 'solid' in sel_el:
  4892. sel_el['solid'] = affinity.translate(sel_el['solid'], 0, num)
  4893. if 'follow' in sel_el:
  4894. sel_el['follow'] = affinity.translate(sel_el['follow'], 0, num)
  4895. if 'clear' in sel_el:
  4896. sel_el['clear'] = affinity.translate(sel_el['clear'], 0, num)
  4897. self.draw_app.plot_all()
  4898. if str(axis) == 'X':
  4899. self.app.inform.emit('[success] %s...' % _('Offset on the X axis done'))
  4900. else:
  4901. self.app.inform.emit('[success] %s...' % _('Offset on the Y axis done'))
  4902. except Exception as e:
  4903. self.app.inform.emit('[ERROR_NOTCL] %s: %s' % (_("Offset action was not executed."), str(e)))
  4904. return
  4905. def on_rotate_key(self):
  4906. val_box = FCInputDialog(title=_("Rotate ..."),
  4907. text='%s:' % _('Enter an Angle Value (degrees)'),
  4908. min=-359.9999, max=360.0000, decimals=self.decimals,
  4909. init_val=float(self.app.defaults['tools_transform_rotate']))
  4910. val_box.setWindowIcon(QtGui.QIcon('share/rotate.png'))
  4911. val, ok = val_box.get_value()
  4912. if ok:
  4913. self.on_rotate(val=val)
  4914. self.app.inform.emit('[success] %s...' % _("Geometry shape rotate done"))
  4915. return
  4916. else:
  4917. self.app.inform.emit('[WARNING_NOTCL] %s...' % _("Geometry shape rotate cancelled"))
  4918. def on_offx_key(self):
  4919. units = self.app.defaults['units'].lower()
  4920. val_box = FCInputDialog(title=_("Offset on X axis ..."),
  4921. text='%s: (%s)' % (_('Enter a distance Value'), str(units)),
  4922. min=-9999.9999, max=10000.0000, decimals=self.decimals,
  4923. init_val=float(self.app.defaults['tools_transform_offset_x']))
  4924. val_box.setWindowIcon(QtGui.QIcon('share/offsetx32.png'))
  4925. val, ok = val_box.get_value()
  4926. if ok:
  4927. self.on_offx(val=val)
  4928. self.app.inform.emit('[success] %s...' % _("Geometry shape offset on X axis done"))
  4929. return
  4930. else:
  4931. self.app.inform.emit('[WARNING_NOTCL] %s...' % _("Geometry shape offset X cancelled"))
  4932. def on_offy_key(self):
  4933. units = self.app.defaults['units'].lower()
  4934. val_box = FCInputDialog(title=_("Offset on Y axis ..."),
  4935. text='%s: (%s)' % (_('Enter a distance Value'), str(units)),
  4936. min=-9999.9999, max=10000.0000, decimals=self.decimals,
  4937. init_val=float(self.app.defaults['tools_transform_offset_y']))
  4938. val_box.setWindowIcon(QtGui.QIcon('share/offsety32.png'))
  4939. val, ok = val_box.get_value()
  4940. if ok:
  4941. self.on_offx(val=val)
  4942. self.app.inform.emit('[success] %s...' % _("Geometry shape offset on Y axis done"))
  4943. return
  4944. else:
  4945. self.app.inform.emit('[WARNING_NOTCL] %s...' % _("Geometry shape offset Y cancelled"))
  4946. def on_skewx_key(self):
  4947. val_box = FCInputDialog(title=_("Skew on X axis ..."),
  4948. text='%s:' % _('Enter an Angle Value (degrees)'),
  4949. min=-359.9999, max=360.0000, decimals=self.decimals,
  4950. init_val=float(self.app.defaults['tools_transform_skew_x']))
  4951. val_box.setWindowIcon(QtGui.QIcon('share/skewX.png'))
  4952. val, ok = val_box.get_value()
  4953. if ok:
  4954. self.on_skewx(val=val)
  4955. self.app.inform.emit('[success] %s...' % _("Geometry shape skew on X axis done"))
  4956. return
  4957. else:
  4958. self.app.inform.emit('[WARNING_NOTCL] %s...' % _("Geometry shape skew X cancelled"))
  4959. def on_skewy_key(self):
  4960. val_box = FCInputDialog(title=_("Skew on Y axis ..."),
  4961. text='%s:' % _('Enter an Angle Value (degrees)'),
  4962. min=-359.9999, max=360.0000, decimals=self.decimals,
  4963. init_val=float(self.app.defaults['tools_transform_skew_y']))
  4964. val_box.setWindowIcon(QtGui.QIcon('share/skewY.png'))
  4965. val, ok = val_box.get_value()
  4966. if ok:
  4967. self.on_skewx(val=val)
  4968. self.app.inform.emit('[success] %s...' % _("Geometry shape skew on Y axis done"))
  4969. return
  4970. else:
  4971. self.app.inform.emit('[WARNING_NOTCL] %s...' % _("Geometry shape skew Y cancelled"))
  4972. def get_shapely_list_bounds(geometry_list):
  4973. xmin = np.Inf
  4974. ymin = np.Inf
  4975. xmax = -np.Inf
  4976. ymax = -np.Inf
  4977. for gs in geometry_list:
  4978. try:
  4979. gxmin, gymin, gxmax, gymax = gs.bounds
  4980. xmin = min([xmin, gxmin])
  4981. ymin = min([ymin, gymin])
  4982. xmax = max([xmax, gxmax])
  4983. ymax = max([ymax, gymax])
  4984. except Exception as e:
  4985. log.warning("DEVELOPMENT: Tried to get bounds of empty geometry. --> %s" % str(e))
  4986. return [xmin, ymin, xmax, ymax]