shapes.py 134 KB

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  1. from __future__ import division
  2. from __future__ import unicode_literals
  3. from __future__ import print_function
  4. from __future__ import absolute_import
  5. from future import standard_library
  6. standard_library.install_aliases()
  7. from builtins import input
  8. from builtins import zip
  9. from builtins import str
  10. from builtins import range
  11. from builtins import *
  12. from builtins import object
  13. from numpy import linspace, sin, cos, pi, array, asarray, ndarray, sqrt, abs
  14. import pprint, copy, glob, os
  15. from math import radians
  16. from io import BytesIO
  17. from ruamel.yaml import YAML
  18. from PIL import Image
  19. import ast
  20. from .MatplotlibDraw import MatplotlibDraw
  21. drawing_tool = MatplotlibDraw()
  22. def sketch2SVG():
  23. f = BytesIO()
  24. drawing_tool.mpl.savefig(f, format="svg")
  25. return f.getvalue()
  26. def sketch2PNG():
  27. f = BytesIO()
  28. drawing_tool.mpl.gcf().canvas.print_png(f)
  29. img = Image.open(f)
  30. return img
  31. def sVe(key, expression, container):
  32. root = ast.parse(expression)
  33. names = {node.id for node in ast.walk(root) if isinstance(node, ast.Name)}
  34. for name in names:
  35. if name not in container:
  36. return f"in key {key}: {name} in {expression} is not defined"
  37. return 1
  38. def sketchParse(sketch, container):
  39. yaml = YAML()
  40. gwd = yaml.load(sketch)
  41. for _k in list(gwd.keys()):
  42. if _k == "stop":
  43. break
  44. _c = gwd[_k]
  45. _t = str(type(_c))
  46. if _k == "libraries":
  47. for l in _c:
  48. exec(l,container)
  49. #print(_k, _c, _t)
  50. if _t == "<class 'ruamel.yaml.scalarfloat.ScalarFloat'>" or \
  51. _t == "<class 'str'>" or _t == "<class 'int'>":
  52. _formula = f"{_k} = {_c}".replace("<bslash>","\\")
  53. #print(_formula)
  54. if type(_r = sVe(_k, _formula, container)) == str:
  55. print(_r)
  56. break
  57. exec(_formula,container)
  58. elif _t == "<class 'ruamel.yaml.comments.CommentedMap'>":
  59. #print(_c)
  60. _keys = list(_c.keys())
  61. #print(_keys)
  62. if 'formula' in _keys:
  63. _formula = f"{_k} = {_c['formula']}".replace("<bslash>","\\")
  64. #print(_formula)
  65. if type(_r = sVe(_k, _formula, container)) == str:
  66. print(_r)
  67. break
  68. exec(_formula,container)
  69. if 'style' in _keys:
  70. for _style in _c["style"]:
  71. # x_const.set_linestyle('dotted')
  72. _param = _c["style"][_style]
  73. __t = str(type(_param))
  74. #print(__t)
  75. if __t == "<class 'int'>":
  76. _style = f"{_k}.set_{_style}({_param})"
  77. else:
  78. _style = f"{_k}.set_{_style}('{_param}')"
  79. #print(_style)
  80. exec(_style,container)
  81. if 'transform' in _keys:
  82. #print(_c['transform'])
  83. if str(type(_c['transform'])) == "<class 'str'>":
  84. _t = f"{_k}.{_c['transform']}"
  85. #print(_t)
  86. if type(_r = sVe(_k, _t, container)) == str:
  87. print(_r)
  88. break
  89. exec(_t,container)
  90. else:
  91. for _transform in _c["transform"]:
  92. # x_const.rotate(-theta, contact)
  93. _t = f"{_k}.{_transform}"
  94. #print(_t)
  95. if type(_r = sVe(_k, _t, container)) == str:
  96. print(_r)
  97. break
  98. exec(_t,container)
  99. if "action" in _keys:
  100. _action = _c["action"]
  101. #print(_action)
  102. if type(_r = sVe(_k, _action, container)) == str:
  103. print(_r)
  104. break
  105. exec(_action,container)
  106. def point(x, y, check_inside=False):
  107. for obj, name in zip([x, y], ['x', 'y']):
  108. if isinstance(obj, (float,int)):
  109. pass
  110. elif isinstance(obj, ndarray):
  111. if obj.size == 1:
  112. pass
  113. else:
  114. raise TypeError('%s=%s of type %d has length=%d > 1' %
  115. (name, obj, type(obj), obj.size))
  116. else:
  117. raise TypeError('%s=%s is of wrong type %d' %
  118. (name, obj, type(obj)))
  119. if check_inside:
  120. ok, msg = drawing_tool.inside((x,y), exception=True)
  121. if not ok:
  122. print(msg)
  123. return array((x, y), dtype=float)
  124. def distance(p1, p2):
  125. p1 = arr2D(p1); p2 = arr2D(p2)
  126. d = p2 - p1
  127. return sqrt(d[0]**2 + d[1]**2)
  128. def unit_vec(x, y=None):
  129. """Return unit vector of the vector (x,y), or just x if x is a 2D point."""
  130. if isinstance(x, (float,int)) and isinstance(y, (float,int)):
  131. x = point(x, y)
  132. elif isinstance(x, (list,tuple,ndarray)) and y is None:
  133. return arr2D(x)/sqrt(x[0]**2 + x[1]**2)
  134. else:
  135. raise TypeError('x=%s is %s, must be float or ndarray 2D point' %
  136. (x, type(x)))
  137. def arr2D(x, check_inside=False):
  138. if isinstance(x, (tuple,list,ndarray)):
  139. if len(x) == 2:
  140. pass
  141. else:
  142. raise ValueError('x=%s has length %d, not 2' % (x, len(x)))
  143. else:
  144. raise TypeError('x=%s must be list/tuple/ndarray, not %s' %
  145. (x, type(x)))
  146. if check_inside:
  147. ok, msg = drawing_tool.inside(x, exception=True)
  148. if not ok:
  149. print(msg)
  150. return asarray(x, dtype=float)
  151. def _is_sequence(seq, length=None,
  152. can_be_None=False, error_message=True):
  153. if can_be_None:
  154. legal_types = (list,tuple,ndarray,None)
  155. else:
  156. legal_types = (list,tuple,ndarray)
  157. if isinstance(seq, legal_types):
  158. if length is not None:
  159. if length == len(seq):
  160. return True
  161. elif error_message:
  162. raise TypeError('sequence %s is not a sequence but %s; must be %s of length %d' %
  163. (str(seq), type(seq),
  164. ', '.join([str(t) for t in legal_types]),
  165. len(seq)))
  166. else:
  167. return False
  168. else:
  169. return True
  170. elif error_message:
  171. raise TypeError('sequence %s is not a sequence but %s, %s; must be %s' %
  172. (str(seq), seq.__class__.__name__, type(seq),
  173. ','.join([str(t)[5:-1] for t in legal_types])))
  174. else:
  175. return False
  176. def is_sequence(*sequences, **kwargs):
  177. length = kwargs.get('length', 2)
  178. can_be_None = kwargs.get('can_be_None', False)
  179. error_message = kwargs.get('error_message', True)
  180. check_inside = kwargs.get('check_inside', False)
  181. for x in sequences:
  182. _is_sequence(x, length=length, can_be_None=can_be_None,
  183. error_message=error_message)
  184. if check_inside:
  185. ok, msg = drawing_tool.inside(x, exception=True)
  186. if not ok:
  187. print(msg)
  188. def animate(fig, time_points, action, moviefiles=False,
  189. pause_per_frame=0.5, show_screen_graphics=True,
  190. title=None,
  191. **action_kwargs):
  192. if moviefiles:
  193. # Clean up old frame files
  194. framefilestem = 'tmp_frame_'
  195. framefiles = glob.glob('%s*.png' % framefilestem)
  196. for framefile in framefiles:
  197. os.remove(framefile)
  198. for n, t in enumerate(time_points):
  199. drawing_tool.erase()
  200. action(t, fig, **action_kwargs)
  201. #could demand returning fig, but in-place modifications
  202. #are done anyway
  203. #fig = action(t, fig)
  204. #if fig is None:
  205. # raise TypeError(
  206. # 'animate: action returns None, not fig\n'
  207. # '(a Shape object with the whole figure)')
  208. fig.draw()
  209. drawing_tool.display(title=title, show=show_screen_graphics)
  210. if moviefiles:
  211. drawing_tool.savefig('%s%04d.png' % (framefilestem, n),
  212. crop=False)
  213. if moviefiles:
  214. return '%s%%04d.png' % framefilestem
  215. """
  216. def save():
  217. os.system("ffmpeg -r 1 -i img%01d.png -vcodec mpeg4 -y movie.mp4")
  218. """
  219. class Shape(object):
  220. """
  221. Superclass for drawing different geometric shapes.
  222. Subclasses define shapes, but drawing, rotation, translation,
  223. etc. are done in generic functions in this superclass.
  224. """
  225. def __init__(self):
  226. """
  227. Never to be called from subclasses.
  228. """
  229. raise NotImplementedError(
  230. 'class %s must implement __init__,\nwhich defines '
  231. 'self.shapes as a dict (or list) of Shape objects\n'
  232. 'Do not call Shape.__init__!' % \
  233. self.__class__.__name__)
  234. def set_name(self, name):
  235. self.name = name
  236. return self
  237. def get_name(self):
  238. return self.name if hasattr(self, 'name') else 'no_name'
  239. def __iter__(self):
  240. # We iterate over self.shapes many places, and will
  241. # get here if self.shapes is just a Shape object and
  242. # not the assumed dict/list.
  243. print('Warning: class %s does not define self.shapes\n'\
  244. 'as a dict of Shape objects')
  245. return [self] # Make the iteration work
  246. def copy(self):
  247. return copy.deepcopy(self)
  248. def __getitem__(self, name):
  249. """
  250. Allow indexing like::
  251. obj1['name1']['name2']
  252. all the way down to ``Curve`` or ``Point`` (``Text``)
  253. objects.
  254. """
  255. if hasattr(self, 'shapes'):
  256. if name in self.shapes:
  257. return self.shapes[name]
  258. else:
  259. for shape in self.shapes:
  260. if isinstance(self.shapes[shape], (Curve,Point)):
  261. # Indexing of Curve/Point/Text is not possible
  262. raise TypeError(
  263. 'Index "%s" (%s) is illegal' %
  264. (name, self.__class__.__name__))
  265. return self.shapes[shape][name]
  266. else:
  267. raise Exception('This is a bug in __getitem__')
  268. def __setitem__(self, name, value):
  269. """
  270. Allow assignment like::
  271. obj1['name1']['name2'] = value
  272. all the way down to ``Curve`` or ``Point`` (``Text``)
  273. objects.
  274. """
  275. if hasattr(self, 'shapes'):
  276. self.shapes[name] = value
  277. else:
  278. raise Exception('Cannot assign')
  279. def _for_all_shapes(self, func, *args, **kwargs):
  280. verbose = kwargs.get('verbose', 0)
  281. if not hasattr(self, 'shapes'):
  282. # When self.shapes is lacking, we either come to
  283. # a special implementation of func or we come here
  284. # because Shape.func is just inherited. This is
  285. # an error if the class is not Curve or Point
  286. if isinstance(self, (Curve, Point)):
  287. return # ok: no shapes, but object is a curve or point end leaf
  288. else:
  289. raise AttributeError('class %s has no shapes attribute!' %
  290. self.__class__.__name__)
  291. is_dict = True if isinstance(self.shapes, dict) else False
  292. for k, shape in enumerate(self.shapes):
  293. if is_dict:
  294. shape_name = shape
  295. shape = self.shapes[shape]
  296. else:
  297. shape_name = k # use index as name if list (not dict)
  298. if not isinstance(shape, Shape):
  299. if isinstance(shape, dict):
  300. raise TypeError(
  301. 'class %s has a self.shapes member "%s" that is just\n'
  302. 'a plain dictionary,\n%s\n'
  303. 'Did you mean to embed this dict in a Composition\n'
  304. 'object?' % (self.__class__.__name__, shape_name,
  305. str(shape)))
  306. elif isinstance(shape, (list,tuple)):
  307. raise TypeError(
  308. 'class %s has self.shapes member "%s" containing\n'
  309. 'a %s object %s,\n'
  310. 'Did you mean to embed this list in a Composition\n'
  311. 'object?' % (self.__class__.__name__, shape_name,
  312. type(shape), str(shape)))
  313. elif shape is None:
  314. raise TypeError(
  315. 'class %s has a self.shapes member "%s" that is None.\n'
  316. 'Some variable name is wrong, or some function\n'
  317. 'did not return the right object...' \
  318. % (self.__class__.__name__, shape_name))
  319. else:
  320. raise TypeError(
  321. 'class %s has a self.shapes member "%s" of %s which '
  322. 'is not a Shape object\n%s' %
  323. (self.__class__.__name__, shape_name, type(shape),
  324. pprint.pformat(self.shapes)))
  325. if isinstance(shape, Curve):
  326. shape.name = shape_name
  327. if verbose > 0:
  328. print('calling %s.%s' % (shape_name, func))
  329. getattr(shape, func)(*args, **kwargs)
  330. def draw(self, verbose=0):
  331. self._for_all_shapes('draw', verbose=verbose)
  332. return self
  333. def draw_dimensions(self):
  334. if hasattr(self, 'dimensions'):
  335. for shape in self.dimensions:
  336. self.dimensions[shape].draw()
  337. return self
  338. else:
  339. #raise AttributeError('no self.dimensions dict for defining dimensions of class %s' % self.__classname__.__name__)
  340. return self
  341. def rotate(self, angle, center):
  342. is_sequence(center, length=2)
  343. self._for_all_shapes('rotate', angle, center)
  344. return self
  345. def translate(self, vec):
  346. is_sequence(vec, length=2)
  347. self._for_all_shapes('translate', vec)
  348. return self
  349. def scale(self, factor):
  350. self._for_all_shapes('scale', factor)
  351. return self
  352. def deform(self, displacement_function):
  353. self._for_all_shapes('deform', displacement_function)
  354. return self
  355. def minmax_coordinates(self, minmax=None):
  356. if minmax is None:
  357. minmax = {'xmin': 1E+20, 'xmax': -1E+20,
  358. 'ymin': 1E+20, 'ymax': -1E+20}
  359. self._for_all_shapes('minmax_coordinates', minmax)
  360. return minmax
  361. def recurse(self, name, indent=0):
  362. if not isinstance(self.shapes, dict):
  363. raise TypeError('recurse works only with dict self.shape, not %s' %
  364. type(self.shapes))
  365. space = ' '*indent
  366. print(space, '%s: %s.shapes has entries' % \
  367. (self.__class__.__name__, name), \
  368. str(list(self.shapes.keys()))[1:-1])
  369. for shape in self.shapes:
  370. print(space, end=' ')
  371. print('call %s.shapes["%s"].recurse("%s", %d)' % \
  372. (name, shape, shape, indent+2))
  373. self.shapes[shape].recurse(shape, indent+2)
  374. def graphviz_dot(self, name, classname=True):
  375. if not isinstance(self.shapes, dict):
  376. raise TypeError('recurse works only with dict self.shape, not %s' %
  377. type(self.shapes))
  378. dotfile = name + '.dot'
  379. pngfile = name + '.png'
  380. if classname:
  381. name = r"%s:\n%s" % (self.__class__.__name__, name)
  382. couplings = self._object_couplings(name, classname=classname)
  383. # Insert counter for similar names
  384. from collections import defaultdict
  385. count = defaultdict(lambda: 0)
  386. couplings2 = []
  387. for i in range(len(couplings)):
  388. parent, child = couplings[i]
  389. count[child] += 1
  390. parent += ' (%d)' % count[parent]
  391. child += ' (%d)' % count[child]
  392. couplings2.append((parent, child))
  393. print('graphviz', couplings, count)
  394. # Remove counter for names there are only one of
  395. for i in range(len(couplings)):
  396. parent2, child2 = couplings2[i]
  397. parent, child = couplings[i]
  398. if count[parent] > 1:
  399. parent = parent2
  400. if count[child] > 1:
  401. child = child2
  402. couplings[i] = (parent, child)
  403. print(couplings)
  404. f = open(dotfile, 'w')
  405. f.write('digraph G {\n')
  406. for parent, child in couplings:
  407. f.write('"%s" -> "%s";\n' % (parent, child))
  408. f.write('}\n')
  409. f.close()
  410. print('Run dot -Tpng -o %s %s' % (pngfile, dotfile))
  411. def _object_couplings(self, parent, couplings=[], classname=True):
  412. """Find all couplings of parent and child objects in a figure."""
  413. for shape in self.shapes:
  414. if classname:
  415. childname = r"%s:\n%s" % \
  416. (self.shapes[shape].__class__.__name__, shape)
  417. else:
  418. childname = shape
  419. couplings.append((parent, childname))
  420. self.shapes[shape]._object_couplings(childname, couplings,
  421. classname)
  422. return couplings
  423. def set_linestyle(self, style):
  424. styles = ('solid', 'dashed', 'dashdot', 'dotted')
  425. if style not in styles:
  426. raise ValueError('%s: style=%s must be in %s' %
  427. (self.__class__.__name__ + '.set_linestyle:',
  428. style, str(styles)))
  429. self._for_all_shapes('set_linestyle', style)
  430. return self
  431. def set_linewidth(self, width):
  432. if not isinstance(width, int) and width >= 0:
  433. raise ValueError('%s: width=%s must be positive integer' %
  434. (self.__class__.__name__ + '.set_linewidth:',
  435. width))
  436. self._for_all_shapes('set_linewidth', width)
  437. return self
  438. def set_linecolor(self, color):
  439. if color in drawing_tool.line_colors:
  440. color = drawing_tool.line_colors[color]
  441. elif color in list(drawing_tool.line_colors.values()):
  442. pass # color is ok
  443. else:
  444. raise ValueError('%s: invalid color "%s", must be in %s' %
  445. (self.__class__.__name__ + '.set_linecolor:',
  446. color, list(drawing_tool.line_colors.keys())))
  447. self._for_all_shapes('set_linecolor', color)
  448. return self
  449. def set_arrow(self, style):
  450. styles = ('->', '<-', '<->')
  451. if not style in styles:
  452. raise ValueError('%s: style=%s must be in %s' %
  453. (self.__class__.__name__ + '.set_arrow:',
  454. style, styles))
  455. self._for_all_shapes('set_arrow', style)
  456. return self
  457. def set_filled_curves(self, color='', pattern=''):
  458. if color in drawing_tool.line_colors:
  459. color = drawing_tool.line_colors[color]
  460. elif color in list(drawing_tool.line_colors.values()):
  461. pass # color is ok
  462. else:
  463. raise ValueError('%s: invalid color "%s", must be in %s' %
  464. (self.__class__.__name__ + '.set_filled_curves:',
  465. color, list(drawing_tool.line_colors.keys())))
  466. self._for_all_shapes('set_filled_curves', color, pattern)
  467. return self
  468. def set_shadow(self, pixel_displacement=3):
  469. self._for_all_shapes('set_shadow', pixel_displacement)
  470. return self
  471. def show_hierarchy(self, indent=0, format='std'):
  472. """Recursive pretty print of hierarchy of objects."""
  473. if not isinstance(self.shapes, dict):
  474. print('cannot print hierarchy when %s.shapes is not a dict' % \
  475. self.__class__.__name__)
  476. s = ''
  477. if format == 'dict':
  478. s += '{'
  479. for shape in self.shapes:
  480. if format == 'dict':
  481. shape_str = repr(shape) + ':'
  482. elif format == 'plain':
  483. shape_str = shape
  484. else:
  485. shape_str = shape + ':'
  486. if format == 'dict' or format == 'plain':
  487. class_str = ''
  488. else:
  489. class_str = ' (%s)' % \
  490. self.shapes[shape].__class__.__name__
  491. s += '\n%s%s%s %s,' % (
  492. ' '*indent,
  493. shape_str,
  494. class_str,
  495. self.shapes[shape].show_hierarchy(indent+4, format))
  496. if format == 'dict':
  497. s += '}'
  498. return s
  499. def __str__(self):
  500. """Display hierarchy with minimum information (just object names)."""
  501. return self.show_hierarchy(format='plain')
  502. def __repr__(self):
  503. """Display hierarchy as a dictionary."""
  504. return self.show_hierarchy(format='dict')
  505. #return pprint.pformat(self.shapes)
  506. class Curve(Shape):
  507. """General curve as a sequence of (x,y) coordintes."""
  508. def __init__(self, x, y):
  509. """
  510. `x`, `y`: arrays holding the coordinates of the curve.
  511. """
  512. self.x = asarray(x, dtype=float)
  513. self.y = asarray(y, dtype=float)
  514. #self.shapes must not be defined in this class
  515. #as self.shapes holds children objects:
  516. #Curve has no children (end leaf of self.shapes tree)
  517. self.linestyle = None
  518. self.linewidth = None
  519. self.linecolor = None
  520. self.fillcolor = None
  521. self.fillpattern = None
  522. self.arrow = None
  523. self.shadow = False
  524. self.name = None # name of object that this Curve represents
  525. def inside_plot_area(self, verbose=True):
  526. """Check that all coordinates are within drawing_tool's area."""
  527. xmin, xmax = self.x.min(), self.x.max()
  528. ymin, ymax = self.y.min(), self.y.max()
  529. t = drawing_tool
  530. inside = True
  531. if not hasattr(t, 'xmin'):
  532. return None # drawing area is not defined
  533. if xmin < t.xmin:
  534. inside = False
  535. if verbose:
  536. print('x_min=%g < plot area x_min=%g' % (xmin, t.xmin))
  537. if xmax > t.xmax:
  538. inside = False
  539. if verbose:
  540. print('x_max=%g > plot area x_max=%g' % (xmax, t.xmax))
  541. if ymin < t.ymin:
  542. inside = False
  543. if verbose:
  544. print('y_min=%g < plot area y_min=%g' % (ymin, t.ymin))
  545. if ymax > t.ymax:
  546. inside = False
  547. if verbose:
  548. print('y_max=%g > plot area y_max=%g' % (ymax, t.ymax))
  549. return inside
  550. def draw(self, verbose=0):
  551. """
  552. Send the curve to the plotting engine. That is, convert
  553. coordinate information in self.x and self.y, together
  554. with optional settings of linestyles, etc., to
  555. plotting commands for the chosen engine.
  556. """
  557. self.inside_plot_area()
  558. drawing_tool.plot_curve(
  559. self.x, self.y,
  560. self.linestyle, self.linewidth, self.linecolor,
  561. self.arrow, self.fillcolor, self.fillpattern,
  562. self.shadow, self.name)
  563. if verbose:
  564. print('drawing Curve object with %d points' % len(self.x))
  565. def rotate(self, angle, center):
  566. """
  567. Rotate all coordinates: `angle` is measured in degrees and
  568. (`x`,`y`) is the "origin" of the rotation.
  569. """
  570. angle = radians(angle)
  571. x, y = center
  572. c = cos(angle); s = sin(angle)
  573. xnew = x + (self.x - x)*c - (self.y - y)*s
  574. ynew = y + (self.x - x)*s + (self.y - y)*c
  575. self.x = xnew
  576. self.y = ynew
  577. return self
  578. def scale(self, factor):
  579. """Scale all coordinates by `factor`: ``x = factor*x``, etc."""
  580. self.x = factor*self.x
  581. self.y = factor*self.y
  582. return self
  583. def translate(self, vec):
  584. """Translate all coordinates by a vector `vec`."""
  585. self.x += vec[0]
  586. self.y += vec[1]
  587. return self
  588. def deform(self, displacement_function):
  589. """Displace all coordinates according to displacement_function(x,y)."""
  590. for i in range(len(self.x)):
  591. self.x[i], self.y[i] = displacement_function(self.x[i], self.y[i])
  592. return self
  593. def minmax_coordinates(self, minmax=None):
  594. if minmax is None:
  595. minmax = {'xmin': [], 'xmax': [], 'ymin': [], 'ymax': []}
  596. minmax['xmin'] = min(self.x.min(), minmax['xmin'])
  597. minmax['xmax'] = max(self.x.max(), minmax['xmax'])
  598. minmax['ymin'] = min(self.y.min(), minmax['ymin'])
  599. minmax['ymax'] = max(self.y.max(), minmax['ymax'])
  600. return minmax
  601. def recurse(self, name, indent=0):
  602. space = ' '*indent
  603. print(space, 'reached "bottom" object %s' % \
  604. self.__class__.__name__)
  605. def _object_couplings(self, parent, couplings=[], classname=True):
  606. return
  607. def set_linecolor(self, color):
  608. self.linecolor = color
  609. return self
  610. def set_linewidth(self, width):
  611. self.linewidth = width
  612. return self
  613. def set_linestyle(self, style):
  614. self.linestyle = style
  615. return self
  616. def set_arrow(self, style=None):
  617. self.arrow = style
  618. return self
  619. def set_filled_curves(self, color='', pattern=''):
  620. self.fillcolor = color
  621. self.fillpattern = pattern
  622. return self
  623. def set_shadow(self, pixel_displacement=3):
  624. self.shadow = pixel_displacement
  625. return self
  626. def show_hierarchy(self, indent=0, format='std'):
  627. if format == 'dict':
  628. return '"%s"' % str(self)
  629. elif format == 'plain':
  630. return ''
  631. else:
  632. return str(self)
  633. def __str__(self):
  634. """Compact pretty print of a Curve object."""
  635. s = '%d (x,y) coords' % self.x.size
  636. inside = self.inside_plot_area(verbose=False)
  637. if inside is None:
  638. pass # no info about the plotting area
  639. elif not inside:
  640. s += ', some coordinates are outside plotting area!\n'
  641. props = ('linecolor', 'linewidth', 'linestyle', 'arrow',
  642. 'fillcolor', 'fillpattern')
  643. for prop in props:
  644. value = getattr(self, prop)
  645. if value is not None:
  646. s += ' %s=%s' % (prop, repr(value))
  647. return s
  648. def __repr__(self):
  649. return str(self)
  650. class Spline(Shape):
  651. # Note: UnivariateSpline interpolation may not work if
  652. # the x[i] points are far from uniformly spaced
  653. def __init__(self, x, y, degree=3, resolution=501):
  654. from scipy.interpolate import UnivariateSpline
  655. self.smooth = UnivariateSpline(x, y, s=0, k=degree)
  656. self.xcoor = linspace(x[0], x[-1], resolution)
  657. ycoor = self.smooth(self.xcoor)
  658. self.shapes = {'smooth': Curve(self.xcoor, ycoor)}
  659. def geometric_features(self):
  660. s = self.shapes['smooth']
  661. return {'start': point(s.x[0], s.y[0]),
  662. 'end': point(s.x[-1], s.y[-1]),
  663. 'interval': [s.x[0], s.x[-1]]}
  664. def __call__(self, x):
  665. return self.smooth(x)
  666. # Can easily find the derivative and the integral as
  667. # self.smooth.derivative(n=1) and self.smooth.antiderivative()
  668. class SketchyFunc1(Spline):
  669. """
  670. A typical function curve used to illustrate an "arbitrary" function.
  671. """
  672. domain = [1, 6]
  673. def __init__(self, name=None, name_pos='start',
  674. xmin=0, xmax=6, ymin=0, ymax=2):
  675. x = array([0, 2, 3, 4, 5, 6])
  676. y = array([1, 1.8, 1.2, 0.7, 0.8, 0.85])
  677. #y = array([5, 3.5, 3.8, 3, 2.5, 2.4])
  678. # Scale x and y
  679. x = xmin - x.min() + x*(xmax - xmin)/(x.max()-x.min())
  680. y = ymin - y.min() + y*(ymax - ymin)/(y.max()-y.min())
  681. Spline.__init__(self, x, y)
  682. self.shapes['smooth'].set_linecolor('black')
  683. if name is not None:
  684. self.shapes['name'] = Text(name, self.geometric_features()[name_pos] + point(0,0.1))
  685. class SketchyFunc3(Spline):
  686. """
  687. A typical function curve used to illustrate an "arbitrary" function.
  688. """
  689. domain = [0, 6]
  690. def __init__(self, name=None, name_pos='start',
  691. xmin=0, xmax=6, ymin=0.5, ymax=3.8):
  692. x = array([0, 2, 3, 4, 5, 6])
  693. y = array([0.5, 3.5, 3.8, 2, 2.5, 3.5])
  694. # Scale x and y
  695. x = xmin - x.min() + x*(xmax - xmin)/(x.max()-x.min())
  696. y = ymin - y.min() + y*(ymax - ymin)/(y.max()-y.min())
  697. Spline.__init__(self, x, y)
  698. self.shapes['smooth'].set_linecolor('black')
  699. if name is not None:
  700. self.shapes['name'] = Text(name, self.geometric_features()[name_pos] + point(0,0.1))
  701. class SketchyFunc4(Spline):
  702. """
  703. A typical function curve used to illustrate an "arbitrary" function.
  704. Can be a companion function to SketchyFunc3.
  705. """
  706. domain = [1, 6]
  707. def __init__(self, name=None, name_pos='start',
  708. xmin=0, xmax=6, ymin=0.5, ymax=1.8):
  709. x = array([0, 2, 3, 4, 5, 6])
  710. y = array([1.5, 1.3, 0.7, 0.5, 0.6, 0.8])
  711. # Scale x and y
  712. x = xmin - x.min() + x*(xmax - xmin)/(x.max()-x.min())
  713. y = ymin - y.min() + y*(ymax - ymin)/(y.max()-y.min())
  714. Spline.__init__(self, x, y)
  715. self.shapes['smooth'].set_linecolor('black')
  716. if name is not None:
  717. self.shapes['name'] = Text(name, self.geometric_features()[name_pos] + point(0,0.1))
  718. class SketchyFunc2(Shape):
  719. """
  720. A typical function curve used to illustrate an "arbitrary" function.
  721. """
  722. domain = [0, 2.25]
  723. def __init__(self, name=None, name_pos='end',
  724. xmin=0, xmax=2.25, ymin=0.046679703125, ymax=1.259375):
  725. a = 0; b = 2.25
  726. resolution = 100
  727. x = linspace(a, b, resolution+1)
  728. f = self # for calling __call__
  729. y = f(x)
  730. # Scale x and y
  731. x = xmin - x.min() + x*(xmax - xmin)/(x.max()-x.min())
  732. y = ymin - y.min() + y*(ymax - ymin)/(y.max()-y.min())
  733. self.shapes = {'smooth': Curve(x, y)}
  734. self.shapes['smooth'].set_linecolor('black')
  735. pos = point(a, f(a)) if name_pos == 'start' else point(b, f(b))
  736. if name is not None:
  737. self.shapes['name'] = Text(name, pos + point(0,0.1))
  738. def __call__(self, x):
  739. return 0.5+x*(2-x)*(0.9-x) # on [0, 2.25]
  740. class Point(Shape):
  741. """A point (x,y) which can be rotated, translated, and scaled."""
  742. def __init__(self, x, y):
  743. self.x, self.y = x, y
  744. #self.shapes is not needed in this class
  745. def __add__(self, other):
  746. if isinstance(other, (list,tuple)):
  747. other = Point(other)
  748. return Point(self.x+other.x, self.y+other.y)
  749. # class Point is an abstract class - only subclasses are useful
  750. # and must implement draw
  751. def draw(self, verbose=0):
  752. raise NotImplementedError(
  753. 'class %s must implement the draw method' %
  754. self.__class__.__name__)
  755. def rotate(self, angle, center):
  756. """Rotate point an `angle` (in degrees) around (`x`,`y`)."""
  757. angle = angle*pi/180
  758. x, y = center
  759. c = cos(angle); s = sin(angle)
  760. xnew = x + (self.x - x)*c - (self.y - y)*s
  761. ynew = y + (self.x - x)*s + (self.y - y)*c
  762. self.x = xnew
  763. self.y = ynew
  764. return self
  765. def scale(self, factor):
  766. """Scale point coordinates by `factor`: ``x = factor*x``, etc."""
  767. self.x = factor*self.x
  768. self.y = factor*self.y
  769. return self
  770. def translate(self, vec):
  771. """Translate point by a vector `vec`."""
  772. self.x += vec[0]
  773. self.y += vec[1]
  774. return self
  775. def deform(self, displacement_function):
  776. """Displace coordinates according to displacement_function(x,y)."""
  777. for i in range(len(self.x)):
  778. self.x, self.y = displacement_function(self.x, self.y)
  779. return self
  780. def minmax_coordinates(self, minmax=None):
  781. if minmax is None:
  782. minmax = {'xmin': [], 'xmax': [], 'ymin': [], 'ymax': []}
  783. minmax['xmin'] = min(self.x, minmax['xmin'])
  784. minmax['xmax'] = max(self.x, minmax['xmax'])
  785. minmax['ymin'] = min(self.y, minmax['ymin'])
  786. minmax['ymax'] = max(self.y, minmax['ymax'])
  787. return minmax
  788. def recurse(self, name, indent=0):
  789. space = ' '*indent
  790. print(space, 'reached "bottom" object %s' % \
  791. self.__class__.__name__)
  792. def _object_couplings(self, parent, couplings=[], classname=True):
  793. return
  794. # No need for set_linecolor etc since self._for_all_shapes, which
  795. # is always called for these functions, makes a test and stops
  796. # calls if self.shapes is missing and the object is Point or Curve
  797. def show_hierarchy(self, indent=0, format='std'):
  798. s = '%s at (%g,%g)' % (self.__class__.__name__, self.x, self.y)
  799. if format == 'dict':
  800. return '"%s"' % s
  801. elif format == 'plain':
  802. return ''
  803. else:
  804. return s
  805. # no need to store input data as they are invalid after rotations etc.
  806. class Rectangle(Shape):
  807. """
  808. Rectangle specified by the point `lower_left_corner`, `width`,
  809. and `height`.
  810. """
  811. def __init__(self, lower_left_corner, width, height):
  812. is_sequence(lower_left_corner)
  813. p = arr2D(lower_left_corner) # short form
  814. x = [p[0], p[0] + width,
  815. p[0] + width, p[0], p[0]]
  816. y = [p[1], p[1], p[1] + height,
  817. p[1] + height, p[1]]
  818. self.shapes = {'rectangle': Curve(x,y)}
  819. # Dimensions
  820. dims = {
  821. 'width': Distance_wText(p + point(0, -height/5.),
  822. p + point(width, -height/5.),
  823. 'width'),
  824. 'height': Distance_wText(p + point(width + width/5., 0),
  825. p + point(width + width/5., height),
  826. 'height'),
  827. 'lower_left_corner': Text_wArrow('lower_left_corner',
  828. p - point(width/5., height/5.), p)
  829. }
  830. self.dimensions = dims
  831. def geometric_features(self):
  832. """
  833. Return dictionary with
  834. ==================== =============================================
  835. Attribute Description
  836. ==================== =============================================
  837. lower_left Lower left corner point.
  838. upper_left Upper left corner point.
  839. lower_right Lower right corner point.
  840. upper_right Upper right corner point.
  841. lower_mid Middle point on lower side.
  842. upper_mid Middle point on upper side.
  843. center Center point
  844. ==================== =============================================
  845. """
  846. r = self.shapes['rectangle']
  847. d = {'lower_left': point(r.x[0], r.y[0]),
  848. 'lower_right': point(r.x[1], r.y[1]),
  849. 'upper_right': point(r.x[2], r.y[2]),
  850. 'upper_left': point(r.x[3], r.y[3])}
  851. d['lower_mid'] = 0.5*(d['lower_left'] + d['lower_right'])
  852. d['upper_mid'] = 0.5*(d['upper_left'] + d['upper_right'])
  853. d['left_mid'] = 0.5*(d['lower_left'] + d['upper_left'])
  854. d['right_mid'] = 0.5*(d['lower_right'] + d['upper_right'])
  855. d['center'] = point(d['lower_mid'][0], d['left_mid'][1])
  856. return d
  857. class Triangle(Shape):
  858. """
  859. Triangle defined by its three vertices p1, p2, and p3.
  860. Recorded geometric features:
  861. ==================== =============================================
  862. Attribute Description
  863. ==================== =============================================
  864. p1, p2, p3 Corners as given to the constructor.
  865. ==================== =============================================
  866. """
  867. def __init__(self, p1, p2, p3):
  868. is_sequence(p1, p2, p3)
  869. x = [p1[0], p2[0], p3[0], p1[0]]
  870. y = [p1[1], p2[1], p3[1], p1[1]]
  871. self.shapes = {'triangle': Curve(x,y)}
  872. # Dimensions
  873. self.dimensions = {'p1': Text('p1', p1),
  874. 'p2': Text('p2', p2),
  875. 'p3': Text('p3', p3)}
  876. def geometric_features(self):
  877. t = self.shapes['triangle']
  878. return {'p1': point(t.x[0], t.y[0]),
  879. 'p2': point(t.x[1], t.y[1]),
  880. 'p3': point(t.x[2], t.y[2])}
  881. class Line(Shape):
  882. def __init__(self, start, end):
  883. is_sequence(start, end, length=2)
  884. if isinstance(start, (list,tuple)):
  885. start = array(start)
  886. if isinstance(end, (list,tuple)):
  887. end = array(end)
  888. if (start == end).all():
  889. # Introduce a very small perturbation since identical points
  890. # give drawing error
  891. end[0] = start[0] + 1E-10
  892. x = [start[0], end[0]]
  893. y = [start[1], end[1]]
  894. self.shapes = {'line': Curve(x, y)}
  895. def geometric_features(self):
  896. line = self.shapes['line']
  897. return {'start': point(line.x[0], line.y[0]),
  898. 'end': point(line.x[1], line.y[1]),}
  899. def compute_formulas(self):
  900. x, y = self.shapes['line'].x, self.shapes['line'].y
  901. # Define equations for line:
  902. # y = a*x + b, x = c*y + d
  903. try:
  904. self.a = (y[1] - y[0])/(x[1] - x[0])
  905. self.b = y[0] - self.a*x[0]
  906. except ZeroDivisionError:
  907. # Vertical line, y is not a function of x
  908. self.a = None
  909. self.b = None
  910. try:
  911. if self.a is None:
  912. self.c = 0
  913. else:
  914. self.c = 1/float(self.a)
  915. if self.b is None:
  916. self.d = x[1]
  917. except ZeroDivisionError:
  918. # Horizontal line, x is not a function of y
  919. self.c = None
  920. self.d = None
  921. def compute_formulas(self):
  922. x, y = self.shapes['line'].x, self.shapes['line'].y
  923. tol = 1E-14
  924. # Define equations for line:
  925. # y = a*x + b, x = c*y + d
  926. if abs(x[1] - x[0]) > tol:
  927. self.a = (y[1] - y[0])/(x[1] - x[0])
  928. self.b = y[0] - self.a*x[0]
  929. else:
  930. # Vertical line, y is not a function of x
  931. self.a = None
  932. self.b = None
  933. if self.a is None:
  934. self.c = 0
  935. elif abs(self.a) > tol:
  936. self.c = 1/float(self.a)
  937. self.d = x[1]
  938. else: # self.a is 0
  939. # Horizontal line, x is not a function of y
  940. self.c = None
  941. self.d = None
  942. def __call__(self, x=None, y=None):
  943. """Given x, return y on the line, or given y, return x."""
  944. self.compute_formulas()
  945. if x is not None and self.a is not None:
  946. return self.a*x + self.b
  947. elif y is not None and self.c is not None:
  948. return self.c*y + self.d
  949. else:
  950. raise ValueError(
  951. 'Line.__call__(x=%s, y=%s) not meaningful' % \
  952. (x, y))
  953. def new_interval(self, x=None, y=None):
  954. """Redefine current Line to cover interval in x or y."""
  955. if x is not None:
  956. is_sequence(x, length=2)
  957. xL, xR = x
  958. new_line = Line((xL, self(x=xL)), (xR, self(x=xR)))
  959. elif y is not None:
  960. is_sequence(y, length=2)
  961. yL, yR = y
  962. new_line = Line((xL, self(y=xL)), (xR, self(y=xR)))
  963. self.shapes['line'] = new_line['line']
  964. return self
  965. # First implementation of class Circle
  966. class Circle(Shape):
  967. def __init__(self, center, radius, resolution=180):
  968. self.center, self.radius = center, radius
  969. self.resolution = resolution
  970. t = linspace(0, 2*pi, resolution+1)
  971. x0 = center[0]; y0 = center[1]
  972. R = radius
  973. x = x0 + R*cos(t)
  974. y = y0 + R*sin(t)
  975. self.shapes = {'circle': Curve(x, y)}
  976. def __call__(self, theta):
  977. """
  978. Return (x, y) point corresponding to angle theta.
  979. Not valid after a translation, rotation, or scaling.
  980. """
  981. return self.center[0] + self.radius*cos(theta), \
  982. self.center[1] + self.radius*sin(theta)
  983. class Arc(Shape):
  984. def __init__(self, center, radius,
  985. start_angle, arc_angle,
  986. resolution=180):
  987. is_sequence(center)
  988. # Must record some parameters for __call__
  989. self.center = arr2D(center)
  990. self.radius = radius
  991. self.start_angle = radians(start_angle)
  992. self.arc_angle = radians(arc_angle)
  993. self.resolution = resolution
  994. self.setCurve()
  995. def setCurve(self):
  996. t = linspace(self.start_angle,
  997. self.start_angle + self.arc_angle,
  998. self.resolution+1)
  999. x0 = self.center[0]; y0 = self.center[1]
  1000. R = self.radius
  1001. x = x0 + R*cos(t)
  1002. y = y0 + R*sin(t)
  1003. self.shapes = {'arc': Curve(x, y)}
  1004. # Cannot set dimensions (Arc_wText recurses into this
  1005. # constructor forever). Set in test_Arc instead.
  1006. def geometric_features(self):
  1007. a = self.shapes['arc']
  1008. m = len(a.x)//2 # mid point in array
  1009. d = {'start': point(a.x[0], a.y[0]),
  1010. 'end': point(a.x[-1], a.y[-1]),
  1011. 'mid': point(a.x[m], a.y[m])}
  1012. return d
  1013. def __call__(self, theta):
  1014. """
  1015. Return (x,y) point at start_angle + theta.
  1016. Not valid after translation, rotation, or scaling.
  1017. """
  1018. theta = radians(theta)
  1019. t = self.start_angle + theta
  1020. x0 = self.center[0]
  1021. y0 = self.center[1]
  1022. R = self.radius
  1023. x = x0 + R*cos(t)
  1024. y = y0 + R*sin(t)
  1025. return (x, y)
  1026. # Alternative for small arcs: Parabola
  1027. class Parabola(Shape):
  1028. def __init__(self, start, mid, stop, resolution=21):
  1029. self.p1, self.p2, self.p3 = start, mid, stop
  1030. # y as function of x? (no point on line x=const?)
  1031. tol = 1E-14
  1032. if abs(self.p1[0] - self.p2[0]) > 1E-14 and \
  1033. abs(self.p2[0] - self.p3[0]) > 1E-14 and \
  1034. abs(self.p3[0] - self.p1[0]) > 1E-14:
  1035. self.y_of_x = True
  1036. else:
  1037. self.y_of_x = False
  1038. # x as function of y? (no point on line y=const?)
  1039. tol = 1E-14
  1040. if abs(self.p1[1] - self.p2[1]) > 1E-14 and \
  1041. abs(self.p2[1] - self.p3[1]) > 1E-14 and \
  1042. abs(self.p3[1] - self.p1[1]) > 1E-14:
  1043. self.x_of_y = True
  1044. else:
  1045. self.x_of_y = False
  1046. if self.y_of_x:
  1047. x = linspace(start[0], end[0], resolution)
  1048. y = self(x=x)
  1049. elif self.x_of_y:
  1050. y = linspace(start[1], end[1], resolution)
  1051. x = self(y=y)
  1052. else:
  1053. raise ValueError(
  1054. 'Parabola: two or more points lie on x=const '
  1055. 'or y=const - not allowed')
  1056. self.shapes = {'parabola': Curve(x, y)}
  1057. def __call__(self, x=None, y=None):
  1058. if x is not None and self.y_of_x:
  1059. return self._L2x(self.p1, self.p2)*self.p3[1] + \
  1060. self._L2x(self.p2, self.p3)*self.p1[1] + \
  1061. self._L2x(self.p3, self.p1)*self.p2[1]
  1062. elif y is not None and self.x_of_y:
  1063. return self._L2y(self.p1, self.p2)*self.p3[0] + \
  1064. self._L2y(self.p2, self.p3)*self.p1[0] + \
  1065. self._L2y(self.p3, self.p1)*self.p2[0]
  1066. else:
  1067. raise ValueError(
  1068. 'Parabola.__call__(x=%s, y=%s) not meaningful' % \
  1069. (x, y))
  1070. def _L2x(self, x, pi, pj, pk):
  1071. return (x - pi[0])*(x - pj[0])/((pk[0] - pi[0])*(pk[0] - pj[0]))
  1072. def _L2y(self, y, pi, pj, pk):
  1073. return (y - pi[1])*(y - pj[1])/((pk[1] - pi[1])*(pk[1] - pj[1]))
  1074. class Circle(Arc):
  1075. def __init__(self, center, radius, resolution=180):
  1076. Arc.__init__(self, center, radius, 0, 360, resolution)
  1077. class Wall(Shape):
  1078. """
  1079. defines an hached box given starting, ending point and thickness, filled with a pattern
  1080. """
  1081. def __init__(self, x, y, thickness, pattern='/', transparent=False):
  1082. is_sequence(x, y, length=len(x))
  1083. if isinstance(x[0], (tuple,list,ndarray)):
  1084. # x is list of curves
  1085. x1 = concatenate(x)
  1086. else:
  1087. x1 = asarray(x, float)
  1088. if isinstance(y[0], (tuple,list,ndarray)):
  1089. # x is list of curves
  1090. y1 = concatenate(y)
  1091. else:
  1092. y1 = asarray(y, float)
  1093. self.x1 = x1; self.y1 = y1
  1094. # Displaced curve (according to thickness)
  1095. x2 = x1
  1096. y2 = y1 + thickness
  1097. # Combine x1,y1 with x2,y2 reversed
  1098. from numpy import concatenate
  1099. x = concatenate((x1, x2[-1::-1]))
  1100. y = concatenate((y1, y2[-1::-1]))
  1101. wall = Curve(x, y)
  1102. wall.set_filled_curves(color='white', pattern=pattern)
  1103. x = [x1[-1]] + x2[-1::-1].tolist() + [x1[0]]
  1104. y = [y1[-1]] + y2[-1::-1].tolist() + [y1[0]]
  1105. self.shapes = {'wall': wall}
  1106. from collections import OrderedDict
  1107. self.shapes = OrderedDict()
  1108. self.shapes['wall'] = wall
  1109. if transparent:
  1110. white_eraser = Curve(x, y)
  1111. white_eraser.set_linecolor('white')
  1112. self.shapes['eraser'] = white_eraser
  1113. def geometric_features(self):
  1114. d = {'start': point(self.x1[0], self.y1[0]),
  1115. 'end': point(self.x1[-1], self.y1[-1])}
  1116. return d
  1117. class Wall2(Shape):
  1118. def __init__(self, x, y, thickness, pattern='/'):
  1119. is_sequence(x, y, length=len(x))
  1120. if isinstance(x[0], (tuple,list,ndarray)):
  1121. # x is list of curves
  1122. x1 = concatenate(x)
  1123. else:
  1124. x1 = asarray(x, float)
  1125. if isinstance(y[0], (tuple,list,ndarray)):
  1126. # x is list of curves
  1127. y1 = concatenate(y)
  1128. else:
  1129. y1 = asarray(y, float)
  1130. self.x1 = x1; self.y1 = y1
  1131. # Displaced curve (according to thickness)
  1132. x2 = x1.copy()
  1133. y2 = y1.copy()
  1134. def displace(idx, idx_m, idx_p):
  1135. # Find tangent and normal
  1136. tangent = point(x1[idx_m], y1[idx_m]) - point(x1[idx_p], y1[idx_p])
  1137. tangent = unit_vec(tangent)
  1138. normal = point(tangent[1], -tangent[0])
  1139. # Displace length "thickness" in "positive" normal direction
  1140. displaced_pt = point(x1[idx], y1[idx]) + thickness*normal
  1141. x2[idx], y2[idx] = displaced_pt
  1142. for i in range(1, len(x1)-1):
  1143. displace(i-1, i+1, i) # centered difference for normal comp.
  1144. # One-sided differences at the end points
  1145. i = 0
  1146. displace(i, i+1, i)
  1147. i = len(x1)-1
  1148. displace(i-1, i, i)
  1149. # Combine x1,y1 with x2,y2 reversed
  1150. from numpy import concatenate
  1151. x = concatenate((x1, x2[-1::-1]))
  1152. y = concatenate((y1, y2[-1::-1]))
  1153. wall = Curve(x, y)
  1154. wall.set_filled_curves(color='white', pattern=pattern)
  1155. x = [x1[-1]] + x2[-1::-1].tolist() + [x1[0]]
  1156. y = [y1[-1]] + y2[-1::-1].tolist() + [y1[0]]
  1157. self.shapes['wall'] = wall
  1158. def geometric_features(self):
  1159. d = {'start': point(self.x1[0], self.y1[0]),
  1160. 'end': point(self.x1[-1], self.y1[-1])}
  1161. return d
  1162. class VelocityProfile(Shape):
  1163. def __init__(self, start, height, profile, num_arrows, scaling=1):
  1164. # vx, vy = profile(y)
  1165. shapes = {}
  1166. # Draw left line
  1167. shapes['start line'] = Line(start, (start[0], start[1]+height))
  1168. # Draw velocity arrows
  1169. dy = float(height)/(num_arrows-1)
  1170. x = start[0]
  1171. y = start[1]
  1172. r = profile(y) # Test on return type
  1173. if not isinstance(r, (list,tuple,ndarray)) and len(r) != 2:
  1174. raise TypeError('VelocityProfile constructor: profile(y) function must return velocity vector (vx,vy), not %s' % type(r))
  1175. for i in range(num_arrows):
  1176. y = start[1] + i*dy
  1177. vx, vy = profile(y)
  1178. if abs(vx) < 1E-8:
  1179. continue
  1180. vx *= scaling
  1181. vy *= scaling
  1182. arr = Arrow1((x,y), (x+vx, y+vy), '->')
  1183. shapes['arrow%d' % i] = arr
  1184. # Draw smooth profile
  1185. xs = []
  1186. ys = []
  1187. n = 100
  1188. dy = float(height)/n
  1189. for i in range(n+2):
  1190. y = start[1] + i*dy
  1191. vx, vy = profile(y)
  1192. vx *= scaling
  1193. vy *= scaling
  1194. xs.append(x+vx)
  1195. ys.append(y+vy)
  1196. shapes['smooth curve'] = Curve(xs, ys)
  1197. self.shapes = shapes
  1198. class Arrow1(Shape):
  1199. """Draw a Line with arrow(s)."""
  1200. def __init__(self, start, end, style='->'):
  1201. arrow = Line(start, end)
  1202. arrow.set_arrow(style)
  1203. # Note:
  1204. self.shapes = {'arrow': arrow}
  1205. def geometric_features(self):
  1206. return self.shapes['arrow'].geometric_features()
  1207. class Arrow3(Shape):
  1208. """
  1209. Build a vertical line and arrow head from Line objects.
  1210. Then rotate `rotation_angle`.
  1211. """
  1212. def __init__(self, start, length, rotation_angle=0):
  1213. self.bottom = start
  1214. self.length = length
  1215. self.angle = rotation_angle
  1216. top = (self.bottom[0], self.bottom[1] + self.length)
  1217. main = Line(self.bottom, top)
  1218. #head_length = self.length/8.0
  1219. head_length = drawing_tool.xrange/50.
  1220. head_degrees = radians(30)
  1221. head_left_pt = (top[0] - head_length*sin(head_degrees),
  1222. top[1] - head_length*cos(head_degrees))
  1223. head_right_pt = (top[0] + head_length*sin(head_degrees),
  1224. top[1] - head_length*cos(head_degrees))
  1225. head_left = Line(head_left_pt, top)
  1226. head_right = Line(head_right_pt, top)
  1227. head_left.set_linestyle('solid')
  1228. head_right.set_linestyle('solid')
  1229. self.shapes = {'line': main, 'head left': head_left,
  1230. 'head right': head_right}
  1231. # rotate goes through self.shapes so self.shapes
  1232. # must be initialized first
  1233. self.rotate(rotation_angle, start)
  1234. def geometric_features(self):
  1235. return self.shapes['line'].geometric_features()
  1236. class Cross(Shape):
  1237. """
  1238. Place a cross at the (x,y) point `position`.
  1239. The cross fits in a 0.2 square which center is (x,y).
  1240. the color is black
  1241. the linewidth is 1
  1242. """
  1243. def __init__(self,c):
  1244. l = 0.1
  1245. line1 = Line(c+point(-l,l),c+point(l,-l))
  1246. line2 = Line(c+point(l,l), c+point(-l,-l))
  1247. cross = Composition({'line1': line1, 'line2': line2})
  1248. cross.set_linecolor('black')
  1249. cross.set_linewidth(1)
  1250. self.shapes = {'cross': cross}
  1251. class Text(Point):
  1252. """
  1253. Place `text` at the (x,y) point `position`, with the given
  1254. fontsize (0 indicates that the default fontsize set in drawing_tool
  1255. is to be used). The text is centered around `position` if `alignment` is
  1256. 'center'; if 'left', the text starts at `position`, and if
  1257. 'right', the right and of the text is located at `position`.
  1258. """
  1259. def __init__(self, text, position, alignment='center', fontsize=0,
  1260. bgcolor=None, fgcolor=None, fontfamily=None):
  1261. """
  1262. fontfamily can be (e.g.) 'serif' or 'monospace' (for code!).
  1263. """
  1264. is_sequence(position)
  1265. is_sequence(position, length=2, can_be_None=True)
  1266. self.text = text
  1267. self.position = position
  1268. self.alignment = alignment
  1269. self.fontsize = fontsize
  1270. self.bgcolor = bgcolor
  1271. self.fgcolor = fgcolor
  1272. self.fontfamily = fontfamily
  1273. Point.__init__(self, position[0], position[1])
  1274. #no need for self.shapes here
  1275. def draw(self, verbose=0):
  1276. drawing_tool.text(
  1277. self.text, (self.x, self.y),
  1278. self.alignment, self.fontsize,
  1279. arrow_tip=None, bgcolor=self.bgcolor, fgcolor=self.fgcolor,
  1280. fontfamily=self.fontfamily)
  1281. if verbose > 0:
  1282. print('drawing Text "%s"' % self.text)
  1283. def __str__(self):
  1284. return 'text "%s" at (%g,%g)' % (self.text, self.x, self.y)
  1285. def __repr__(self):
  1286. return repr(str(self))
  1287. class Text_wArrow(Text):
  1288. """
  1289. As class Text, but an arrow is drawn from the mid part of the text
  1290. to some point `arrow_tip`.
  1291. """
  1292. def __init__(self, text, position, arrow_tip,
  1293. alignment='center', fontsize=0):
  1294. is_sequence(arrow_tip, length=2, can_be_None=True)
  1295. is_sequence(position)
  1296. self.arrow_tip = arrow_tip
  1297. Text.__init__(self, text, position, alignment, fontsize)
  1298. def draw(self, verbose=0):
  1299. drawing_tool.text(
  1300. self.text, self.position,
  1301. self.alignment, self.fontsize,
  1302. arrow_tip=self.arrow_tip,
  1303. bgcolor=self.bgcolor, fgcolor=self.fgcolor,
  1304. fontfamily=self.fontfamily)
  1305. if verbose > 0:
  1306. print('drawing Text_wArrow "%s"' % self.text)
  1307. def __str__(self):
  1308. return 'annotation "%s" at (%g,%g) with arrow to (%g,%g)' % \
  1309. (self.text, self.x, self.y,
  1310. self.arrow_tip[0], self.arrow_tip[1])
  1311. def __repr__(self):
  1312. return repr(str(self))
  1313. class Axis(Shape):
  1314. def __init__(self, start, length, label,
  1315. rotation_angle=0, fontsize=0,
  1316. label_spacing=1./45, label_alignment='left'):
  1317. """
  1318. Draw axis from start with `length` to the right
  1319. (x axis). Place label at the end of the arrow tip.
  1320. Then return `rotation_angle` (in degrees).
  1321. The `label_spacing` denotes the space between the label
  1322. and the arrow tip as a fraction of the length of the plot
  1323. in x direction. A tuple can be given to adjust the position
  1324. in both the x and y directions (with one parameter, the
  1325. x position is adjusted).
  1326. With `label_alignment` one can place
  1327. the axis label text such that the arrow tip is to the 'left',
  1328. 'right', or 'center' with respect to the text field.
  1329. The `label_spacing` and `label_alignment`parameters can
  1330. be used to fine-tune the location of the label.
  1331. """
  1332. # Arrow is vertical arrow, make it horizontal
  1333. arrow = Arrow3(start, length, rotation_angle=-90)
  1334. arrow.rotate(rotation_angle, start)
  1335. if isinstance(label_spacing, (list,tuple)) and len(label_spacing) == 2:
  1336. x_spacing = drawing_tool.xrange*label_spacing[0]
  1337. y_spacing = drawing_tool.yrange*label_spacing[1]
  1338. elif isinstance(label_spacing, (int,float)):
  1339. # just x spacing
  1340. x_spacing = drawing_tool.xrange*label_spacing
  1341. y_spacing = 0
  1342. # should increase spacing for downward pointing axis
  1343. label_pos = [start[0] + length + x_spacing, start[1] + y_spacing]
  1344. label = Text(label, position=label_pos, fontsize=fontsize)
  1345. label.rotate(rotation_angle, start)
  1346. self.shapes = {'arrow': arrow, 'label': label}
  1347. def geometric_features(self):
  1348. return self.shapes['arrow'].geometric_features()
  1349. # Maybe Axis3 with label below/above?
  1350. class Force(Arrow1):
  1351. """
  1352. Indication of a force by an arrow and a text (symbol). Draw an
  1353. arrow, starting at `start` and with the tip at `end`. The symbol
  1354. is placed at `text_pos`, which can be 'start', 'end' or the
  1355. coordinates of a point. If 'end' or 'start', the text is placed at
  1356. a distance `text_spacing` times the width of the total plotting
  1357. area away from the specified point.
  1358. """
  1359. def __init__(self, start, end, text, text_spacing=1./60,
  1360. fontsize=0, text_pos='start', text_alignment='center'):
  1361. Arrow1.__init__(self, start, end, style='->')
  1362. if isinstance(text_spacing, (tuple,list)):
  1363. if len(text_spacing) == 2:
  1364. spacing = point(drawing_tool.xrange*text_spacing[0],
  1365. drawing_tool.xrange*text_spacing[1])
  1366. else:
  1367. spacing = drawing_tool.xrange*text_spacing[0]
  1368. else:
  1369. # just a number, this is x spacing
  1370. spacing = drawing_tool.xrange*text_spacing
  1371. start, end = arr2D(start), arr2D(end)
  1372. # Two cases: label at bottom of line or top, need more
  1373. # spacing if bottom
  1374. downward = (end-start)[1] < 0
  1375. upward = not downward # for easy code reading
  1376. if isinstance(text_pos, (str,bytes)):
  1377. if text_pos == 'start':
  1378. spacing_dir = unit_vec(start - end)
  1379. if upward:
  1380. spacing *= 1.7
  1381. if isinstance(spacing, (int, float)):
  1382. text_pos = start + spacing*spacing_dir
  1383. else:
  1384. text_pos = start + spacing
  1385. elif text_pos == 'end':
  1386. spacing_dir = unit_vec(end - start)
  1387. if downward:
  1388. spacing *= 1.7
  1389. if isinstance(spacing, (int, float)):
  1390. text_pos = end + spacing*spacing_dir
  1391. else:
  1392. text_pos = end + spacing
  1393. self.shapes['text'] = Text(text, text_pos, fontsize=fontsize,
  1394. alignment=text_alignment)
  1395. def geometric_features(self):
  1396. d = Arrow1.geometric_features(self)
  1397. d['symbol_location'] = self.shapes['text'].position
  1398. return d
  1399. class Axis2(Force):
  1400. def __init__(self, start, length, label,
  1401. rotation_angle=0, fontsize=0,
  1402. label_spacing=1./45, label_alignment='left'):
  1403. direction = point(cos(radians(rotation_angle)),
  1404. sin(radians(rotation_angle)))
  1405. Force.__init__(start=start, end=length*direction, text=label,
  1406. text_spacing=label_spacing,
  1407. fontsize=fontsize, text_pos='end',
  1408. text_alignment=label_alignment)
  1409. # Substitute text by label for axis
  1410. self.shapes['label'] = self.shapes['text']
  1411. del self.shapes['text']
  1412. # geometric features from Force is ok
  1413. class Gravity(Axis):
  1414. """Downward-pointing gravity arrow with the symbol g."""
  1415. def __init__(self, start, length, fontsize=0):
  1416. Axis.__init__(self, start, length, '$g$', below=False,
  1417. rotation_angle=-90, label_spacing=1./30,
  1418. fontsize=fontsize)
  1419. self.shapes['arrow'].set_linecolor('black')
  1420. class Gravity(Force):
  1421. """Downward-pointing gravity arrow with the symbol g."""
  1422. def __init__(self, start, length, text='$g$', fontsize=0):
  1423. Force.__init__(self, start, (start[0], start[1]-length),
  1424. text, text_spacing=1./60,
  1425. fontsize=0, text_pos='end')
  1426. self.shapes['arrow'].set_linecolor('black')
  1427. class Distance_wText(Shape):
  1428. """
  1429. Arrow <-> with text (usually a symbol) at the midpoint, used for
  1430. identifying a some distance in a figure. The text is placed
  1431. slightly to the right of vertical-like arrows, with text displaced
  1432. `text_spacing` times to total distance in x direction of the plot
  1433. area. The text is by default aligned 'left' in this case. For
  1434. horizontal-like arrows, the text is placed the same distance
  1435. above, but aligned 'center' by default (when `alignment` is None).
  1436. """
  1437. def __init__(self, start, end, text, fontsize=0, text_spacing=1/60.,
  1438. alignment=None, text_pos='mid'):
  1439. start = arr2D(start)
  1440. end = arr2D(end)
  1441. # Decide first if we have a vertical or horizontal arrow
  1442. vertical = abs(end[0]-start[0]) < 2*abs(end[1]-start[1])
  1443. if vertical:
  1444. # Assume end above start
  1445. if end[1] < start[1]:
  1446. start, end = end, start
  1447. if alignment is None:
  1448. alignment = 'left'
  1449. else: # horizontal arrow
  1450. # Assume start to the right of end
  1451. if start[0] < end[0]:
  1452. start, end = end, start
  1453. if alignment is None:
  1454. alignment = 'center'
  1455. tangent = end - start
  1456. # Tangeng goes always to the left and upward
  1457. normal = unit_vec([tangent[1], -tangent[0]])
  1458. mid = 0.5*(start + end) # midpoint of start-end line
  1459. if text_pos == 'mid':
  1460. text_pos = mid + normal*drawing_tool.xrange*text_spacing
  1461. text = Text(text, text_pos, fontsize=fontsize,
  1462. alignment=alignment)
  1463. else:
  1464. is_sequence(text_pos, length=2)
  1465. text = Text_wArrow(text, text_pos, mid, alignment='left',
  1466. fontsize=fontsize)
  1467. arrow = Arrow1(start, end, style='<->')
  1468. arrow.set_linecolor('black')
  1469. arrow.set_linewidth(1)
  1470. self.shapes = {'arrow': arrow, 'text': text}
  1471. def geometric_features(self):
  1472. d = self.shapes['arrow'].geometric_features()
  1473. d['text_position'] = self.shapes['text'].position
  1474. return d
  1475. class Arc_wText(Shape):
  1476. """
  1477. Arc with text positionned at the left of arc half-way
  1478. """
  1479. def __init__(self, text, center, radius,
  1480. start_angle, arc_angle, fontsize=0,
  1481. resolution=180, text_spacing=1/60.):
  1482. self.text = text
  1483. self.center = center
  1484. self.radius = radius
  1485. self.fontsize=fontsize
  1486. self.resolution=resolution
  1487. self.text_spacing=text_spacing
  1488. self.start_angle = start_angle
  1489. self.arc_angle = arc_angle
  1490. self.setArc()
  1491. def setArc(self):
  1492. arc = Arc(self.center, self.radius, self.start_angle, self.arc_angle,
  1493. self.resolution)
  1494. mid = arr2D(arc(self.arc_angle/2.))
  1495. normal = unit_vec(mid - arr2D(self.center))
  1496. text_pos = mid + normal*drawing_tool.xrange*self.text_spacing
  1497. if hasattr(self, 'linewidth'):
  1498. arc.set_linewidth(self.linewidth)
  1499. self.shapes = {'arc': arc,
  1500. 'text': Text(self.text, text_pos, fontsize=self.fontsize)}
  1501. def changeAngle(self,start_angle,arc_angle):
  1502. self.arc_angle = arc_angle
  1503. self.start_angle = start_angle
  1504. self.setArc()
  1505. def set_linewidth(self, width):
  1506. self.linewidth = width
  1507. self.change_linewidth()
  1508. def change_linewidth(self):
  1509. super().set_linewidth(self.linewidth)
  1510. class Composition(Shape):
  1511. def __init__(self, shapes):
  1512. """shapes: list or dict of Shape objects."""
  1513. if isinstance(shapes, (tuple,list)):
  1514. # Convert to dict using the type of the list element as key
  1515. # (add a counter to make the keys unique)
  1516. shapes = {s.__class__.__name__ + '_' + str(i): s
  1517. for i, s in enumerate(shapes)}
  1518. self.shapes = shapes
  1519. # can make help methods: Line.midpoint, Line.normal(pt, dir='left') -> (x,y)
  1520. # list annotations in each class? contains extra annotations for explaining
  1521. # important parameters to the constructor, e.g., Line.annotations holds
  1522. # start and end as Text objects. Shape.demo calls shape.draw and
  1523. # for annotation in self.demo: annotation.draw() YES!
  1524. # Can make overall demo of classes by making objects and calling demo
  1525. # Could include demo fig in each constructor
  1526. class SimplySupportedBeam(Shape):
  1527. def __init__(self, pos, size):
  1528. pos = arr2D(pos)
  1529. P0 = (pos[0] - size/2., pos[1]-size)
  1530. P1 = (pos[0] + size/2., pos[1]-size)
  1531. triangle = Triangle(P0, P1, pos)
  1532. gap = size/5.
  1533. h = size/4. # height of rectangle
  1534. P2 = (P0[0], P0[1]-gap-h)
  1535. rectangle = Rectangle(P2, size, h).set_filled_curves(pattern='/')
  1536. self.shapes = {'triangle': triangle, 'rectangle': rectangle}
  1537. self.dimensions = {'pos': Text('pos', pos),
  1538. 'size': Distance_wText((P2[0], P2[1]-size),
  1539. (P2[0]+size, P2[1]-size),
  1540. 'size')}
  1541. def geometric_features(self):
  1542. t = self.shapes['triangle']
  1543. r = self.shapes['rectangle']
  1544. d = {'pos': t.geometric_features()['p2'],
  1545. 'mid_support': r.geometric_features()['lower_mid']}
  1546. return d
  1547. class ConstantBeamLoad(Shape):
  1548. """
  1549. Downward-pointing arrows indicating a vertical load.
  1550. The arrows are of equal length and filling a rectangle
  1551. specified as in the :class:`Rectangle` class.
  1552. Recorded geometric features:
  1553. ==================== =============================================
  1554. Attribute Description
  1555. ==================== =============================================
  1556. mid_top Middle point at the top of the row of
  1557. arrows (often used for positioning a text).
  1558. ==================== =============================================
  1559. """
  1560. def __init__(self, lower_left_corner, width, height, num_arrows=10):
  1561. box = Rectangle(lower_left_corner, width, height)
  1562. self.shapes = {'box': box}
  1563. dx = float(width)/(num_arrows-1)
  1564. y_top = lower_left_corner[1] + height
  1565. y_tip = lower_left_corner[1]
  1566. for i in range(num_arrows):
  1567. x = lower_left_corner[0] + i*dx
  1568. self.shapes['arrow%d' % i] = Arrow1((x, y_top), (x, y_tip))
  1569. def geometric_features(self):
  1570. return {'mid_top': self.shapes['box'].geometric_features()['upper_mid']}
  1571. class Moment(Arc_wText):
  1572. def __init__(self, text, center, radius,
  1573. left=True, counter_clockwise=True,
  1574. fontsize=0, text_spacing=1/60.):
  1575. style = '->' if counter_clockwise else '<-'
  1576. start_angle = 90 if left else -90
  1577. Arc_wText.__init__(self, text, center, radius,
  1578. start_angle=start_angle,
  1579. arc_angle=180, fontsize=fontsize,
  1580. text_spacing=text_spacing,
  1581. resolution=180)
  1582. self.shapes['arc']['arc'].set_arrow(style) # Curve object
  1583. class Wheel(Shape):
  1584. def __init__(self, center, radius, inner_radius=None, nlines=10):
  1585. if inner_radius is None:
  1586. inner_radius = radius/5.0
  1587. outer = Circle(center, radius)
  1588. inner = Circle(center, inner_radius)
  1589. lines = []
  1590. # Draw nlines+1 since the first and last coincide
  1591. # (then nlines lines will be visible)
  1592. t = linspace(0, 2*pi, self.nlines+1)
  1593. Ri = inner_radius; Ro = radius
  1594. x0 = center[0]; y0 = center[1]
  1595. xinner = x0 + Ri*cos(t)
  1596. yinner = y0 + Ri*sin(t)
  1597. xouter = x0 + Ro*cos(t)
  1598. youter = y0 + Ro*sin(t)
  1599. lines = [Line((xi,yi),(xo,yo)) for xi, yi, xo, yo in \
  1600. zip(xinner, yinner, xouter, youter)]
  1601. self.shapes = {'inner': inner, 'outer': outer,
  1602. 'spokes': Composition(
  1603. {'spoke%d' % i: lines[i]
  1604. for i in range(len(lines))})}
  1605. class SineWave(Shape):
  1606. def __init__(self, xstart, xstop,
  1607. wavelength, amplitude, mean_level):
  1608. self.xstart = xstart
  1609. self.xstop = xstop
  1610. self.wavelength = wavelength
  1611. self.amplitude = amplitude
  1612. self.mean_level = mean_level
  1613. npoints = (self.xstop - self.xstart)/(self.wavelength/61.0)
  1614. x = linspace(self.xstart, self.xstop, npoints)
  1615. k = 2*pi/self.wavelength # frequency
  1616. y = self.mean_level + self.amplitude*sin(k*x)
  1617. self.shapes = {'waves': Curve(x,y)}
  1618. class Spring(Shape):
  1619. """
  1620. Specify a *vertical* spring, starting at `start` and with `length`
  1621. as total vertical length. In the middle of the spring there are
  1622. `num_windings` circular windings to illustrate the spring. If
  1623. `teeth` is true, the spring windings look like saw teeth,
  1624. otherwise the windings are smooth circles. The parameters `width`
  1625. (total width of spring) and `bar_length` (length of first and last
  1626. bar are given sensible default values if they are not specified
  1627. (these parameters can later be extracted as attributes, see table
  1628. below).
  1629. """
  1630. spring_fraction = 1./2 # fraction of total length occupied by spring
  1631. def __init__(self, start, length, width=None, bar_length=None,
  1632. num_windings=11, teeth=False):
  1633. B = start
  1634. n = num_windings - 1 # n counts teeth intervals
  1635. if n <= 6:
  1636. n = 7
  1637. # n must be odd:
  1638. if n % 2 == 0:
  1639. n = n+1
  1640. L = length
  1641. if width is None:
  1642. w = L/10.
  1643. else:
  1644. w = width/2.0
  1645. s = bar_length
  1646. # [0, x, L-x, L], f = (L-2*x)/L
  1647. # x = L*(1-f)/2.
  1648. # B: start point
  1649. # w: half-width
  1650. # L: total length
  1651. # s: length of first bar
  1652. # P0: start of dashpot (B[0]+s)
  1653. # P1: end of dashpot
  1654. # P2: end point
  1655. shapes = {}
  1656. if s is None:
  1657. f = Spring.spring_fraction
  1658. s = L*(1-f)/2. # start of spring
  1659. self.bar_length = s # record
  1660. self.width = 2*w
  1661. P0 = (B[0], B[1] + s)
  1662. P1 = (B[0], B[1] + L-s)
  1663. P2 = (B[0], B[1] + L)
  1664. if s >= L:
  1665. raise ValueError('length of first bar: %g is larger than total length: %g' % (s, L))
  1666. shapes['bar1'] = Line(B, P0)
  1667. spring_length = L - 2*s
  1668. t = spring_length/n # height increment per winding
  1669. if teeth:
  1670. resolution = 4
  1671. else:
  1672. resolution = 90
  1673. q = linspace(0, n, n*resolution + 1)
  1674. x = P0[0] + w*sin(2*pi*q)
  1675. y = P0[1] + q*t
  1676. shapes['spiral'] = Curve(x, y)
  1677. shapes['bar2'] = Line(P1,P2)
  1678. self.shapes = shapes
  1679. # Dimensions
  1680. start = Text_wArrow('start', (B[0]-1.5*w,B[1]-1.5*w), B)
  1681. width = Distance_wText((B[0]-w, B[1]-3.5*w), (B[0]+w, B[1]-3.5*w),
  1682. 'width')
  1683. length = Distance_wText((B[0]+3*w, B[1]), (B[0]+3*w, B[1]+L),
  1684. 'length')
  1685. num_windings = Text_wArrow('num_windings',
  1686. (B[0]+2*w,P2[1]+w),
  1687. (B[0]+1.2*w, B[1]+L/2.))
  1688. blength1 = Distance_wText((B[0]-2*w, B[1]), (B[0]-2*w, P0[1]),
  1689. 'bar_length',
  1690. text_pos=(P0[0]-7*w, P0[1]+w))
  1691. blength2 = Distance_wText((P1[0]-2*w, P1[1]), (P2[0]-2*w, P2[1]),
  1692. 'bar_length',
  1693. text_pos=(P2[0]-7*w, P2[1]+w))
  1694. dims = {'start': start, 'width': width, 'length': length,
  1695. 'num_windings': num_windings, 'bar_length1': blength1,
  1696. 'bar_length2': blength2}
  1697. self.dimensions = dims
  1698. def geometric_features(self):
  1699. """
  1700. Recorded geometric features:
  1701. ==================== =============================================
  1702. Attribute Description
  1703. ==================== =============================================
  1704. start Start point of spring.
  1705. end End point of spring.
  1706. width Total width of spring.
  1707. bar_length Length of first (and last) bar part.
  1708. ==================== =============================================
  1709. """
  1710. b1 = self.shapes['bar1']
  1711. d = {'start': b1.geometric_features()['start'],
  1712. 'end': self.shapes['bar2'].geometric_features()['end'],
  1713. 'bar_length': self.bar_length,
  1714. 'width': self.width}
  1715. return d
  1716. class Dashpot(Shape):
  1717. """
  1718. Specify a vertical dashpot of height `total_length` and `start` as
  1719. bottom/starting point. The first bar part has length `bar_length`.
  1720. Then comes the dashpot as a rectangular construction of total
  1721. width `width` and height `dashpot_length`. The position of the
  1722. piston inside the rectangular dashpot area is given by
  1723. `piston_pos`, which is the distance between the first bar (given
  1724. by `bar_length`) to the piston.
  1725. If some of `dashpot_length`, `bar_length`, `width` or `piston_pos`
  1726. are not given, suitable default values are calculated. Their
  1727. values can be extracted as keys in the dict returned from
  1728. ``geometric_features``.
  1729. """
  1730. dashpot_fraction = 1./2 # fraction of total_length
  1731. piston_gap_fraction = 1./6 # fraction of width
  1732. piston_thickness_fraction = 1./8 # fraction of dashplot_length
  1733. def __init__(self, start, total_length, bar_length=None,
  1734. width=None, dashpot_length=None, piston_pos=None):
  1735. B = start
  1736. L = total_length
  1737. if width is None:
  1738. w = L/10. # total width 1/5 of length
  1739. else:
  1740. w = width/2.0
  1741. s = bar_length
  1742. # [0, x, L-x, L], f = (L-2*x)/L
  1743. # x = L*(1-f)/2.
  1744. # B: start point
  1745. # w: half-width
  1746. # L: total length
  1747. # s: length of first bar
  1748. # P0: start of dashpot (B[0]+s)
  1749. # P1: end of dashpot
  1750. # P2: end point
  1751. shapes = {}
  1752. # dashpot is P0-P1 in y and width 2*w
  1753. if dashpot_length is None:
  1754. if s is None:
  1755. f = Dashpot.dashpot_fraction
  1756. s = L*(1-f)/2. # default
  1757. P1 = (B[0], B[1]+L-s)
  1758. dashpot_length = f*L
  1759. else:
  1760. if s is None:
  1761. f = 1./2 # the bar lengths are taken as f*dashpot_length
  1762. s = f*dashpot_length # default
  1763. P1 = (B[0], B[1]+s+dashpot_length)
  1764. P0 = (B[0], B[1]+s)
  1765. P2 = (B[0], B[1]+L)
  1766. if P2[1] > P1[1] > P0[1]:
  1767. pass # ok
  1768. else:
  1769. raise ValueError('Dashpot has inconsistent dimensions! start: %g, dashpot begin: %g, dashpot end: %g, very end: %g' % (B[1], P0[1], P1[1], P2[1]))
  1770. shapes['line start'] = Line(B, P0)
  1771. shapes['pot'] = Curve([P1[0]-w, P0[0]-w, P0[0]+w, P1[0]+w],
  1772. [P1[1], P0[1], P0[1], P1[1]])
  1773. piston_thickness = dashpot_length*Dashpot.piston_thickness_fraction
  1774. if piston_pos is None:
  1775. piston_pos = 1/3.*dashpot_length
  1776. if piston_pos < 0:
  1777. piston_pos = 0
  1778. elif piston_pos > dashpot_length:
  1779. piston_pos = dashpot_length - piston_thickness
  1780. abs_piston_pos = P0[1] + piston_pos
  1781. gap = w*Dashpot.piston_gap_fraction
  1782. shapes['piston'] = Composition(
  1783. {'line': Line(P2, (B[0], abs_piston_pos + piston_thickness)),
  1784. 'rectangle': Rectangle((B[0] - w+gap, abs_piston_pos),
  1785. 2*w-2*gap, piston_thickness),
  1786. })
  1787. shapes['piston']['rectangle'].set_filled_curves(pattern='X')
  1788. self.shapes = shapes
  1789. self.bar_length = s
  1790. self.width = 2*w
  1791. self.piston_pos = piston_pos
  1792. self.dashpot_length = dashpot_length
  1793. # Dimensions
  1794. start = Text_wArrow('start', (B[0]-1.5*w,B[1]-1.5*w), B)
  1795. width = Distance_wText((B[0]-w, B[1]-3.5*w), (B[0]+w, B[1]-3.5*w),
  1796. 'width')
  1797. dplength = Distance_wText((B[0]+2*w, P0[1]), (B[0]+2*w, P1[1]),
  1798. 'dashpot_length', text_pos=(B[0]+w,B[1]-w))
  1799. blength = Distance_wText((B[0]-2*w, B[1]), (B[0]-2*w, P0[1]),
  1800. 'bar_length', text_pos=(B[0]-6*w,P0[1]-w))
  1801. ppos = Distance_wText((B[0]-2*w, P0[1]), (B[0]-2*w, P0[1]+piston_pos),
  1802. 'piston_pos', text_pos=(B[0]-6*w,P0[1]+piston_pos-w))
  1803. tlength = Distance_wText((B[0]+4*w, B[1]), (B[0]+4*w, B[1]+L),
  1804. 'total_length',
  1805. text_pos=(B[0]+4.5*w, B[1]+L-2*w))
  1806. line = Line((B[0]+w, abs_piston_pos), (B[0]+7*w, abs_piston_pos)).set_linestyle('dashed').set_linecolor('black').set_linewidth(1)
  1807. pp = Text('abs_piston_pos', (B[0]+7*w, abs_piston_pos), alignment='left')
  1808. dims = {'start': start, 'width': width, 'dashpot_length': dplength,
  1809. 'bar_length': blength, 'total_length': tlength,
  1810. 'piston_pos': ppos,}
  1811. #'abs_piston_pos': Composition({'line': line, 'text': pp})}
  1812. self.dimensions = dims
  1813. def geometric_features(self):
  1814. """
  1815. Recorded geometric features:
  1816. ==================== =============================================
  1817. Attribute Description
  1818. ==================== =============================================
  1819. start Start point of dashpot.
  1820. end End point of dashpot.
  1821. bar_length Length of first bar (from start to spring).
  1822. dashpot_length Length of dashpot middle part.
  1823. width Total width of dashpot.
  1824. piston_pos Position of piston in dashpot, relative to
  1825. start[1] + bar_length.
  1826. ==================== =============================================
  1827. """
  1828. d = {'start': self.shapes['line start'].geometric_features()['start'],
  1829. 'end': self.shapes['piston']['line'].geometric_features()['start'],
  1830. 'bar_length': self.bar_length,
  1831. 'piston_pos': self.piston_pos,
  1832. 'width': self.width,
  1833. 'dashpot_length': self.dashpot_length,
  1834. }
  1835. return d
  1836. class Wavy(Shape):
  1837. """
  1838. A wavy graph consisting of a user-given main curve y=f(x) with
  1839. additional sinusoidal waves of given (constant) amplitude,
  1840. but varying wavelength (a characteristic wavelength is specified).
  1841. """
  1842. def __init__(self, main_curve, interval, wavelength_of_perturbations,
  1843. amplitude_of_perturbations, smoothness):
  1844. """
  1845. ============================ ====================================
  1846. Name Description
  1847. ============================ ====================================
  1848. main_curve f(x) Python function
  1849. interval interval for main_curve
  1850. wavelength_of_perturbations dominant wavelength perturbed waves
  1851. amplitude_of_perturbations amplitude of perturbed waves
  1852. smoothness in [0, 1]: smooth=0, rough=1
  1853. ============================ ====================================
  1854. """
  1855. xmin, xmax = interval
  1856. L = wavelength_of_perturbations
  1857. k_0 = 2*pi/L # main frequency of waves
  1858. k_p = k_0*0.5
  1859. k_k = k_0/2*smoothness
  1860. A_0 = amplitude_of_perturbations
  1861. A_p = 0.3*A_0
  1862. A_k = k_0/2
  1863. x = linspace(xmin, xmax, 2001)
  1864. def w(x):
  1865. A = A_0 + A_p*sin(A_k*x)
  1866. k = k_0 + k_p*sin(k_k*x)
  1867. y = main_curve(x) + A*sin(k*x)
  1868. return y
  1869. self.shapes = {'wavy': Curve(x, w(x))}
  1870. # Use closure w to define __call__ - then we do not need
  1871. # to store all the parameters A_0, A_k, etc. as attributes
  1872. self.__call__ = w
  1873. class StochasticWavyCurve(object):
  1874. """
  1875. Precomputed stochastic wavy graphs.
  1876. There are three graphs with different look.
  1877. Curve 0:
  1878. ----------------------------------------------------------------------
  1879. |
  1880. |
  1881. *|
  1882. * |
  1883. * |
  1884. * |
  1885. * |
  1886. * |
  1887. * |
  1888. * |
  1889. * |
  1890. * |
  1891. * |
  1892. * |
  1893. |*
  1894. | *
  1895. | *
  1896. | *
  1897. | *
  1898. | *
  1899. | *
  1900. | *
  1901. | *
  1902. | *
  1903. | *
  1904. | *
  1905. | *
  1906. | *
  1907. | *
  1908. | *
  1909. | *
  1910. | *
  1911. | *
  1912. | *
  1913. | *
  1914. | *
  1915. | *
  1916. | *
  1917. | *
  1918. | *
  1919. | *
  1920. | *
  1921. | *
  1922. | *
  1923. | *
  1924. | *
  1925. | *
  1926. | *
  1927. | *
  1928. | *
  1929. | *
  1930. | *
  1931. | *
  1932. | *
  1933. | *
  1934. | *
  1935. | *
  1936. | *
  1937. | *
  1938. | *
  1939. | *
  1940. | *
  1941. | *
  1942. | *
  1943. | *
  1944. | *
  1945. | *
  1946. | *
  1947. | *
  1948. | *
  1949. | *
  1950. | *
  1951. |*
  1952. *|
  1953. * |
  1954. * |
  1955. * |
  1956. * |
  1957. * |
  1958. * |
  1959. * |
  1960. * |
  1961. * |
  1962. * |
  1963. * |
  1964. * |
  1965. * |
  1966. * |
  1967. * |
  1968. |*
  1969. | *
  1970. | *
  1971. | *
  1972. | *
  1973. | *
  1974. | *
  1975. | *
  1976. | *
  1977. | *
  1978. | *
  1979. | *
  1980. | *
  1981. | *
  1982. | *
  1983. | *
  1984. | *
  1985. | *
  1986. | *
  1987. | *
  1988. | *
  1989. | *
  1990. | *
  1991. | *
  1992. | *
  1993. | *
  1994. | *
  1995. | *
  1996. | *
  1997. | *
  1998. | *
  1999. | *
  2000. | *
  2001. | *
  2002. | *
  2003. | *
  2004. | *
  2005. | *
  2006. | *
  2007. | *
  2008. | *
  2009. | *
  2010. | *
  2011. | *
  2012. | *
  2013. |
  2014. * |
  2015. * |
  2016. * |
  2017. * |
  2018. * |
  2019. * |
  2020. * |
  2021. * |
  2022. * |
  2023. * |
  2024. * |
  2025. * |
  2026. * |
  2027. * |
  2028. * |
  2029. * |
  2030. * |
  2031. * |
  2032. * |
  2033. * |
  2034. * |
  2035. * |
  2036. * |
  2037. * |
  2038. * |
  2039. * |
  2040. * |
  2041. * |
  2042. * |
  2043. * |
  2044. Curve 2:
  2045. ----------------------------------------------------------------------
  2046. |
  2047. |
  2048. |
  2049. |*
  2050. |*
  2051. |*
  2052. |
  2053. |
  2054. *|
  2055. |*
  2056. | *
  2057. | *
  2058. | *
  2059. | *
  2060. | *
  2061. | *
  2062. | *
  2063. | *
  2064. | *
  2065. | *
  2066. | *
  2067. | *
  2068. | *
  2069. | *
  2070. | *
  2071. | *
  2072. | *
  2073. | *
  2074. | *
  2075. | *
  2076. | *
  2077. | *
  2078. | *
  2079. | *
  2080. | *
  2081. | *
  2082. | *
  2083. | *
  2084. | *
  2085. | *
  2086. | *
  2087. | *
  2088. | *
  2089. | *
  2090. | *
  2091. | *
  2092. | *
  2093. | *
  2094. | *
  2095. | *
  2096. | *
  2097. | *
  2098. | *
  2099. | *
  2100. | *
  2101. | *
  2102. | *
  2103. | *
  2104. | *
  2105. | *
  2106. | *
  2107. |
  2108. * |
  2109. * |
  2110. * |
  2111. * |
  2112. * |
  2113. * |
  2114. * |
  2115. * |
  2116. * |
  2117. * |
  2118. * |
  2119. * |
  2120. * |
  2121. * |
  2122. * |
  2123. * |
  2124. * |
  2125. * |
  2126. * |
  2127. * |
  2128. * |
  2129. * |
  2130. * |
  2131. * |
  2132. * |
  2133. * |
  2134. * |
  2135. * |
  2136. * |
  2137. |
  2138. | *
  2139. | *
  2140. | *
  2141. | *
  2142. | *
  2143. | *
  2144. | *
  2145. | *
  2146. | *
  2147. | *
  2148. | *
  2149. | *
  2150. | *
  2151. | *
  2152. | *
  2153. | *
  2154. | *
  2155. | *
  2156. | *
  2157. | *
  2158. | *
  2159. | *
  2160. |*
  2161. |*
  2162. |
  2163. |
  2164. |
  2165. |*
  2166. | *
  2167. | *
  2168. |*
  2169. |
  2170. *|
  2171. |*
  2172. | *
  2173. | *
  2174. | *
  2175. | *
  2176. | *
  2177. | *
  2178. | *
  2179. | *
  2180. | *
  2181. | *
  2182. | *
  2183. | *
  2184. | *
  2185. | *
  2186. | *
  2187. | *
  2188. | *
  2189. | *
  2190. | *
  2191. | *
  2192. | *
  2193. | *
  2194. | *
  2195. | *
  2196. | *
  2197. | *
  2198. | *
  2199. | *
  2200. | *
  2201. | *
  2202. | *
  2203. | *
  2204. | *
  2205. | *
  2206. | *
  2207. | *
  2208. | *
  2209. | *
  2210. | *
  2211. Curve 2:
  2212. ----------------------------------------------------------------------
  2213. |
  2214. |
  2215. |
  2216. |
  2217. |*
  2218. | *
  2219. | *
  2220. | *
  2221. | *
  2222. | *
  2223. | *
  2224. | *
  2225. | *
  2226. | *
  2227. | *
  2228. | *
  2229. | *
  2230. | *
  2231. | *
  2232. | *
  2233. | *
  2234. | *
  2235. | *
  2236. | *
  2237. | *
  2238. | *
  2239. | *
  2240. | *
  2241. |*
  2242. |
  2243. * |
  2244. * |
  2245. * |
  2246. * |
  2247. * |
  2248. * |
  2249. * |
  2250. * |
  2251. * |
  2252. * |
  2253. |*
  2254. | *
  2255. | *
  2256. | *
  2257. | *
  2258. | *
  2259. | *
  2260. | *
  2261. | *
  2262. | *
  2263. | *
  2264. | *
  2265. | *
  2266. | *
  2267. | *
  2268. | *
  2269. | *
  2270. | *
  2271. | *
  2272. | *
  2273. *|
  2274. * |
  2275. * |
  2276. * |
  2277. * |
  2278. * |
  2279. * |
  2280. * |
  2281. * |
  2282. * |
  2283. * |
  2284. * |
  2285. * |
  2286. * |
  2287. * |
  2288. * |
  2289. * |
  2290. |
  2291. | *
  2292. | *
  2293. | *
  2294. | *
  2295. | *
  2296. | *
  2297. | *
  2298. | *
  2299. | *
  2300. | *
  2301. | *
  2302. | *
  2303. | *
  2304. | *
  2305. | *
  2306. | *
  2307. | *
  2308. | *
  2309. | *
  2310. | *
  2311. | *
  2312. | *
  2313. |*
  2314. *|
  2315. * |
  2316. * |
  2317. * |
  2318. * |
  2319. * |
  2320. * |
  2321. * |
  2322. * |
  2323. * |
  2324. * |
  2325. * |
  2326. * |
  2327. * |
  2328. * |
  2329. * |
  2330. * |
  2331. * |
  2332. * |
  2333. * |
  2334. * |
  2335. * |
  2336. * |
  2337. * |
  2338. * |
  2339. * |
  2340. * |
  2341. * |
  2342. * |
  2343. * |
  2344. * |
  2345. * |
  2346. * |
  2347. * |
  2348. * |
  2349. * |
  2350. * |
  2351. * |
  2352. * |
  2353. * |
  2354. * |
  2355. * |
  2356. * |
  2357. * |
  2358. * |
  2359. * |
  2360. * |
  2361. * |
  2362. * |
  2363. * |
  2364. * |
  2365. * |
  2366. * |
  2367. * |
  2368. * |
  2369. * |
  2370. *|
  2371. |*
  2372. | *
  2373. | *
  2374. | *
  2375. | *
  2376. | *
  2377. | *
  2378. See also hplgit.github.io/pysketcher/doc/src/tut/fig-tut/StochasticWavyCurve.png (and .pdf)
  2379. """
  2380. # The curves were generated by the script generate_road_profiles.py and
  2381. # the code below were generated by plot_roads.py. Both scripts are
  2382. # found doc/src/src-bumpy in the repo git@github.com:hplgit/bumpy.git
  2383. def __init__(self, curve_no=0, percentage=100):
  2384. """
  2385. ============= ===================================================
  2386. Argument Explanation
  2387. ============= ===================================================
  2388. curve_no 0, 1, or 2: chooses one out of three shapes.
  2389. percentage The percentage of the defined curve to be used.
  2390. ============= ===================================================
  2391. """
  2392. self._define_curves()
  2393. self.curve_no = curve_no
  2394. m = int(len(self.x)/float(percentage)*100)
  2395. self.shapes = {'wavy': Curve(self.x[:m], self.y[curve_no][:m])}
  2396. def __call__(self, x):
  2397. raise NotImplementedError
  2398. def _define_curves(self):
  2399. self.x = array([0.0000, 0.0606, 0.1212, 0.1818, 0.2424, 0.3030, 0.3636, 0.4242, 0.4848, 0.5455, 0.6061, 0.6667, 0.7273, 0.7879, 0.8485, 0.9091, 0.9697, 1.0303, 1.0909, 1.1515, 1.2121, 1.2727, 1.3333, 1.3939, 1.4545, 1.5152, 1.5758, 1.6364, 1.6970, 1.7576, 1.8182, 1.8788, 1.9394, 2.0000, 2.0606, 2.1212, 2.1818, 2.2424, 2.3030, 2.3636, 2.4242, 2.4848, 2.5455, 2.6061, 2.6667, 2.7273, 2.7879, 2.8485, 2.9091, 2.9697, 3.0303, 3.0909, 3.1515, 3.2121, 3.2727, 3.3333, 3.3939, 3.4545, 3.5152, 3.5758, 3.6364, 3.6970, 3.7576, 3.8182, 3.8788, 3.9394, 4.0000, 4.0606, 4.1212, 4.1818, 4.2424, 4.3030, 4.3636, 4.4242, 4.4848, 4.5455, 4.6061, 4.6667, 4.7273, 4.7879, 4.8485, 4.9091, 4.9697, 5.0303, 5.0909, 5.1515, 5.2121, 5.2727, 5.3333, 5.3939, 5.4545, 5.5152, 5.5758, 5.6364, 5.6970, 5.7576, 5.8182, 5.8788, 5.9394, 6.0000, 6.0606, 6.1212, 6.1818, 6.2424, 6.3030, 6.3636, 6.4242, 6.4848, 6.5455, 6.6061, 6.6667, 6.7273, 6.7879, 6.8485, 6.9091, 6.9697, 7.0303, 7.0909, 7.1515, 7.2121, 7.2727, 7.3333, 7.3939, 7.4545, 7.5152, 7.5758, 7.6364, 7.6970, 7.7576, 7.8182, 7.8788, 7.9394, 8.0000, 8.0606, 8.1212, 8.1818, 8.2424, 8.3030, 8.3636, 8.4242, 8.4848, 8.5455, 8.6061, 8.6667, 8.7273, 8.7879, 8.8485, 8.9091, 8.9697, 9.0303, 9.0909, 9.1515, 9.2121, 9.2727, 9.3333, 9.3939, 9.4545, 9.5152, 9.5758, 9.6364, 9.6970, 9.7576, 9.8182, 9.8788, 9.9394, 10.0000, 10.0606, 10.1212, 10.1818, 10.2424, 10.3030, 10.3636, 10.4242, 10.4848, 10.5455, 10.6061, 10.6667, 10.7273, 10.7879, 10.8485, 10.9091, 10.9697, 11.0303, 11.0909, 11.1515, 11.2121, 11.2727, 11.3333, 11.3939, 11.4545, 11.5152, 11.5758, 11.6364, 11.6970, 11.7576, 11.8182, 11.8788, 11.9394, 12.0000, 12.0606, 12.1212, 12.1818, 12.2424, 12.3030, 12.3636, 12.4242, 12.4848, 12.5455, 12.6061, 12.6667, 12.7273, 12.7879, 12.8485, 12.9091, 12.9697, 13.0303, 13.0909, 13.1515, 13.2121, 13.2727, 13.3333, 13.3939, 13.4545, 13.5152, 13.5758, 13.6364, 13.6970, 13.7576, 13.8182, 13.8788, 13.9394, 14.0000, 14.0606, 14.1212, 14.1818, 14.2424, 14.3030, 14.3636, 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  2402. self.y[1] = array([0.0000, 0.0002, 0.0002, 0.0001, 0.0001, 0.0003, 0.0008, 0.0009, 0.0009, 0.0015, 0.0019, 0.0027, 0.0033, 0.0037, 0.0041, 0.0052, 0.0055, 0.0050, 0.0048, 0.0054, 0.0054, 0.0059, 0.0061, 0.0060, 0.0054, 0.0050, 0.0047, 0.0042, 0.0033, 0.0031, 0.0027, 0.0021, 0.0015, 0.0008, -0.0002, -0.0011, -0.0015, -0.0015, -0.0021, -0.0025, -0.0027, -0.0013, 0.0005, 0.0030, 0.0049, 0.0074, 0.0099, 0.0119, 0.0142, 0.0166, 0.0186, 0.0205, 0.0229, 0.0247, 0.0266, 0.0286, 0.0307, 0.0327, 0.0346, 0.0368, 0.0379, 0.0393, 0.0409, 0.0434, 0.0457, 0.0478, 0.0499, 0.0520, 0.0534, 0.0544, 0.0561, 0.0576, 0.0587, 0.0593, 0.0597, 0.0599, 0.0594, 0.0588, 0.0588, 0.0595, 0.0609, 0.0628, 0.0651, 0.0673, 0.0693, 0.0721, 0.0760, 0.0798, 0.0837, 0.0881, 0.0931, 0.0977, 0.1023, 0.1076, 0.1127, 0.1175, 0.1223, 0.1264, 0.1302, 0.1333, 0.1373, 0.1408, 0.1441, 0.1472, 0.1497, 0.1516, 0.1523, 0.1527, 0.1532, 0.1537, 0.1542, 0.1549, 0.1551, 0.1543, 0.1536, 0.1532, 0.1524, 0.1512, 0.1497, 0.1484, 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  2403. self.y[2] = array([0.0000, 0.0001, -0.0002, -0.0003, 0.0004, 0.0014, 0.0021, 0.0025, 0.0025, 0.0021, 0.0018, 0.0022, 0.0016, 0.0018, 0.0018, 0.0021, 0.0027, 0.0034, 0.0046, 0.0060, 0.0076, 0.0080, 0.0084, 0.0090, 0.0100, 0.0104, 0.0098, 0.0097, 0.0100, 0.0100, 0.0105, 0.0117, 0.0124, 0.0128, 0.0133, 0.0133, 0.0133, 0.0132, 0.0132, 0.0136, 0.0144, 0.0161, 0.0179, 0.0196, 0.0222, 0.0251, 0.0265, 0.0279, 0.0287, 0.0291, 0.0297, 0.0305, 0.0316, 0.0328, 0.0340, 0.0361, 0.0382, 0.0408, 0.0425, 0.0442, 0.0460, 0.0474, 0.0489, 0.0502, 0.0512, 0.0517, 0.0526, 0.0525, 0.0525, 0.0521, 0.0508, 0.0498, 0.0487, 0.0478, 0.0472, 0.0461, 0.0446, 0.0434, 0.0415, 0.0399, 0.0388, 0.0374, 0.0360, 0.0351, 0.0339, 0.0320, 0.0308, 0.0294, 0.0286, 0.0278, 0.0255, 0.0224, 0.0194, 0.0170, 0.0147, 0.0131, 0.0123, 0.0121, 0.0110, 0.0106, 0.0100, 0.0090, 0.0089, 0.0093, 0.0100, 0.0111, 0.0132, 0.0159, 0.0179, 0.0195, 0.0207, 0.0220, 0.0229, 0.0242, 0.0261, 0.0279, 0.0290, 0.0300, 0.0303, 0.0309, 0.0316, 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0.0806, 0.0836, 0.0857, 0.0879, 0.0896, 0.0920, 0.0949, 0.0975, 0.1002, ])
  2404. # COMPOSITE types:
  2405. # MassSpringForce: Line(horizontal), Spring, Rectangle, Arrow/Line(w/arrow)
  2406. # must be easy to find the tip of the arrow
  2407. # Maybe extra dict: self.name['mass'] = Rectangle object - YES!
  2408. class ArbitraryVolume(Shape):
  2409. """
  2410. An arbitrary closed volume with an optional normal vector and a
  2411. vector field to be used in derivation of continuum mechanical
  2412. equations.
  2413. """
  2414. def __init__(self, position, width=1,
  2415. volume_symbol='V',
  2416. volume_symbol_fontsize='18',
  2417. normal_vector_symbol='n',
  2418. vector_field_symbol=None):
  2419. """
  2420. ============================ ====================================
  2421. Name Description
  2422. ============================ ====================================
  2423. position center point of volume
  2424. width width of volume (about 3 is best)
  2425. normal_vector_symbol symbol of None (no boundary normal)
  2426. volume_symbol None (no center symbol) or character
  2427. volume_symbol_fontsize fontsize of volume symbol
  2428. vector_field_symbol None (no vector) or symbol
  2429. ============================ ====================================
  2430. """
  2431. self.position, self.width = position, width
  2432. self.vector_symbol = vector_field_symbol
  2433. self.normal_symbol = normal_vector_symbol
  2434. ellipse, normal, vector = self._perturbed_unit_ellipse()
  2435. self.shapes = {'closed_curve': ellipse}
  2436. if normal_vector_symbol:
  2437. self.shapes['normal'] = normal
  2438. if vector_field_symbol is not None:
  2439. self.shapes['vector'] = vector
  2440. # Scale and translate
  2441. self.rotate(20, (0,0))
  2442. self.scale(width/2.0)
  2443. self.translate(position)
  2444. # Must be placed at position after translation:
  2445. if volume_symbol:
  2446. self.shapes['name'] = Text('$%s$' % volume_symbol, position,
  2447. fontsize=volume_symbol_fontsize)
  2448. def _perturbed_unit_ellipse(self):
  2449. """Draw the volume as a perturbed ellipse of about unit size."""
  2450. a0 = 1.0
  2451. b0 = 0.75
  2452. eps_a = 0.2
  2453. eps_b = 0.1
  2454. a = lambda t: a0 + eps_a*sin(1*t)
  2455. b = lambda t: b0 + eps_b*cos(1*t)
  2456. x = lambda t: a(t)*cos(t)
  2457. y = lambda t: b(t)*sin(t)
  2458. t = linspace(0, 2*pi, 101) # parameter
  2459. ellipse = Curve(x(t), y(t))
  2460. # Make normal vector
  2461. tx = lambda t: eps_a*cos(t)*cos(t) - a(t)*sin(t)
  2462. ty = lambda t: -eps_b*sin(t)*sin(t) + b(t)*cos(t)
  2463. t0 = pi/5
  2464. nx = ty(t0)
  2465. ny = -tx(t0)
  2466. nx = nx/sqrt(nx**2 + ny**2)
  2467. ny = ny/sqrt(nx**2 + ny**2)
  2468. Px = x(t0)
  2469. Py = y(t0)
  2470. start = point(x(t0), y(t0))
  2471. end = start + point(0.75*b0*nx, 0.75*b0*ny)
  2472. normal = Force(start, end, '$\\boldsymbol{%s}$' % self.normal_symbol,
  2473. text_spacing=1./60,
  2474. text_pos='end',
  2475. text_alignment='center')
  2476. end = start + point(0.75*b0/3*nx, 0.75*b0*4*ny)
  2477. vector = Force(start, end, '$\\boldsymbol{%s}$' % self.vector_symbol,
  2478. text_spacing=1./60,
  2479. text_pos='end',
  2480. text_alignment='center')
  2481. return ellipse, normal, vector
  2482. def geometric_features(self):
  2483. """
  2484. Recorded geometric features:
  2485. ==================== =============================================
  2486. Attribute Description
  2487. ==================== =============================================
  2488. position center point of volume
  2489. normal_vector_start start of normal vector
  2490. normal_vector_end end of normal vector
  2491. ==================== =============================================
  2492. """
  2493. d = {'position': self.position}
  2494. if 'normal' in self.shapes:
  2495. d['normal_vector_start'] = self.shapes['normal'].geometric_features()['start']
  2496. d['normal_vector_end'] = self.shapes['normal'].geometric_features()['end']
  2497. return d
  2498. def _test1():
  2499. set_coordinate_system(xmin=0, xmax=10, ymin=0, ymax=10)
  2500. l1 = Line((0,0), (1,1))
  2501. l1.draw()
  2502. eval(input(': '))
  2503. c1 = Circle((5,2), 1)
  2504. c2 = Circle((6,2), 1)
  2505. w1 = Wheel((7,2), 1)
  2506. c1.draw()
  2507. c2.draw()
  2508. w1.draw()
  2509. hardcopy()
  2510. display() # show the plot
  2511. def _test2():
  2512. set_coordinate_system(xmin=0, xmax=10, ymin=0, ymax=10)
  2513. l1 = Line((0,0), (1,1))
  2514. l1.draw()
  2515. eval(input(': '))
  2516. c1 = Circle((5,2), 1)
  2517. c2 = Circle((6,2), 1)
  2518. w1 = Wheel((7,2), 1)
  2519. filled_curves(True)
  2520. set_linecolor('blue')
  2521. c1.draw()
  2522. set_linecolor('aqua')
  2523. c2.draw()
  2524. filled_curves(False)
  2525. set_linecolor('red')
  2526. w1.draw()
  2527. hardcopy()
  2528. display() # show the plot
  2529. def _test3():
  2530. """Test example from the book."""
  2531. set_coordinate_system(xmin=0, xmax=10, ymin=0, ymax=10)
  2532. l1 = Line(start=(0,0), stop=(1,1)) # define line
  2533. l1.draw() # make plot data
  2534. r1 = Rectangle(lower_left_corner=(0,1), width=3, height=5)
  2535. r1.draw()
  2536. Circle(center=(5,7), radius=1).draw()
  2537. Wheel(center=(6,2), radius=2, inner_radius=0.5, nlines=7).draw()
  2538. hardcopy()
  2539. display()
  2540. def _test4():
  2541. """Second example from the book."""
  2542. set_coordinate_system(xmin=0, xmax=10, ymin=0, ymax=10)
  2543. r1 = Rectangle(lower_left_corner=(0,1), width=3, height=5)
  2544. c1 = Circle(center=(5,7), radius=1)
  2545. w1 = Wheel(center=(6,2), radius=2, inner_radius=0.5, nlines=7)
  2546. c2 = Circle(center=(7,7), radius=1)
  2547. filled_curves(True)
  2548. c1.draw()
  2549. set_linecolor('blue')
  2550. r1.draw()
  2551. set_linecolor('aqua')
  2552. c2.draw()
  2553. # Add thick aqua line around rectangle:
  2554. filled_curves(False)
  2555. set_linewidth(4)
  2556. r1.draw()
  2557. set_linecolor('red')
  2558. # Draw wheel with thick lines:
  2559. w1.draw()
  2560. hardcopy('tmp_colors')
  2561. display()
  2562. def _test5():
  2563. set_coordinate_system(xmin=0, xmax=10, ymin=0, ymax=10)
  2564. c = 6. # center point of box
  2565. w = 2. # size of box
  2566. L = 3
  2567. r1 = Rectangle((c-w/2, c-w/2), w, w)
  2568. l1 = Line((c,c-w/2), (c,c-w/2-L))
  2569. linecolor('blue')
  2570. filled_curves(True)
  2571. r1.draw()
  2572. linecolor('aqua')
  2573. filled_curves(False)
  2574. l1.draw()
  2575. hardcopy()
  2576. display() # show the plot
  2577. def rolling_wheel(total_rotation_angle):
  2578. """Animation of a rotating wheel."""
  2579. set_coordinate_system(xmin=0, xmax=10, ymin=0, ymax=10)
  2580. import time
  2581. center = (6,2)
  2582. radius = 2.0
  2583. angle = 2.0
  2584. pngfiles = []
  2585. w1 = Wheel(center=center, radius=radius, inner_radius=0.5, nlines=7)
  2586. for i in range(int(total_rotation_angle/angle)):
  2587. w1.draw()
  2588. print('BIG PROBLEM WITH ANIMATE!!!')
  2589. display()
  2590. filename = 'tmp_%03d' % i
  2591. pngfiles.append(filename + '.png')
  2592. hardcopy(filename)
  2593. time.sleep(0.3) # pause
  2594. L = radius*angle*pi/180 # translation = arc length
  2595. w1.rotate(angle, center)
  2596. w1.translate((-L, 0))
  2597. center = (center[0] - L, center[1])
  2598. erase()
  2599. cmd = 'convert -delay 50 -loop 1000 %s tmp_movie.gif' \
  2600. % (' '.join(pngfiles))
  2601. print('converting PNG files to animated GIF:\n', cmd)
  2602. import subprocess
  2603. failure, output = subprocess.getstatusoutput(cmd)
  2604. if failure: print('Could not run', cmd)
  2605. if __name__ == '__main__':
  2606. #rolling_wheel(40)
  2607. #_test1()
  2608. #_test3()
  2609. funcs = [
  2610. #test_Axis,
  2611. test_inclined_plane,
  2612. ]
  2613. for func in funcs:
  2614. func()
  2615. input('Type Return: ')