utilities.py 45 KB

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  1. #fool: should be wrColor like prColor... dumb
  2. def wrapRed(skk): return "\033[91m{}\033[00m".format(skk)
  3. def wrapGreen(skk): return "\033[92m{}\033[00m".format(skk)
  4. def wrapPurple(skk): return "\033[95m{}\033[00m".format(skk)
  5. def wrapWhite(skk): return "\033[97m{}\033[00m".format(skk)
  6. def wrapOrange(skk): return "\033[0;33m{}\033[00m".format(skk)
  7. # these should reimplement the print interface..
  8. def prRed(*args): print (*[wrapRed(arg) for arg in args])
  9. def prGreen(*args): print (*[wrapGreen(arg) for arg in args])
  10. def prPurple(*args): print (*[wrapPurple(arg) for arg in args])
  11. def prWhite(*args): print (*[wrapWhite(arg) for arg in args])
  12. def prOrange(*args): print (*[wrapOrange(arg) for arg in args])
  13. # add THIS to the top of a file for easy access:
  14. # from mantis.utilities import (prRed, prGreen, prPurple, prWhite,
  15. # prOrange,
  16. # wrapRed, wrapGreen, wrapPurple, wrapWhite,
  17. # wrapOrange,)
  18. # SOME PRINTS
  19. #DO! Figure out what the hell this does
  20. # then re-write it in a simpler, cleaner way
  21. # that ignores groups because it gets lines from a parsed tree
  22. # ideally I can use the seeking-lines instead of the socket/tree lines
  23. # since those allow the function to travel through the tree.
  24. # not sure if the above comment still has any place here....
  25. def print_lines(lines):
  26. printstring, string = "", ""
  27. cur_g = 0
  28. for line in lines:
  29. string += wrapRed("%i: " % len(line))
  30. for s, g in line:
  31. new_g = len(g) -1
  32. difference = new_g - cur_g
  33. if difference > 0:
  34. string = string[:-1] # get rid of leading space
  35. for i in range(difference):
  36. string += " [ "
  37. elif difference < 0:
  38. string = string[:-4]# get rid of arrow
  39. for i in range(abs(difference)):
  40. string += " ] "
  41. string += "-> "
  42. cur_g = new_g
  43. wrap=wrapWhite
  44. if (s.node.bl_idname in ['UtilitySwitch', 'UtilityDriver', 'UtilityDriverVariable']):
  45. wrap = wrapPurple
  46. elif (s.node.bl_idname in ['xFormArmatureNode', 'xFormBoneNode']):
  47. wrap = wrapOrange
  48. elif (s.node.bl_idname in ['LinkStretchTo']):
  49. wrap = wrapRed
  50. elif ('Link' in s.node.bl_idname):
  51. wrap = wrapGreen
  52. string += wrap(s.node.name + ":" + s.name) + " -> "
  53. string = string[:-4]
  54. while cur_g > 0:
  55. cur_g -= 1
  56. string += " ] "
  57. cur_g, difference = 0,0
  58. printstring +=string + "\n\n"; string = ""
  59. return printstring
  60. # why is this not printing groups in brackets?
  61. def print_socket_signature(sig):
  62. string = ""
  63. for i, e in enumerate(sig):
  64. if (e == "NONE"):
  65. continue
  66. wrap = wrapWhite
  67. if (i == len(sig)-2):
  68. wrap = wrapRed
  69. elif (i == len(sig) - 1):
  70. wrap = wrapGreen
  71. string+= wrap(e) + ":"
  72. return string[:-1]
  73. def print_node_signature(sig,):
  74. string = ""
  75. for i, e in enumerate(sig):
  76. if (e == "NONE"):
  77. continue
  78. wrap = wrapWhite
  79. if (i == len(sig)-2):
  80. wrap = wrapRed
  81. elif (i == len(sig) - 1):
  82. continue
  83. string+= wrap(e) + ":"
  84. return string[:-1]
  85. def print_parsed_node(parsed_node):
  86. # do: make this consistent with the above
  87. string = ""
  88. for k, v in parsed_node.items():
  89. if isinstance(v, dict):
  90. string += "%s:\n" % (k)
  91. for k1, v1 in v.items():
  92. string += " %s: %s\n" % (k1, v1)
  93. else:
  94. string += "%s: %s\n" % (k, v )
  95. return string
  96. ## SIGNATURES ##
  97. def get_socket_signature(line_element):
  98. """
  99. This function creates a convenient, hashable signature for
  100. identifying a node path.
  101. """
  102. if not line_element:
  103. return None
  104. signature, socket, tree_path = [], line_element[0], line_element[1]
  105. for n in tree_path:
  106. if hasattr(n, "name"):
  107. signature.append(n.name)
  108. else:
  109. signature.append("NONE")
  110. signature.append(socket.node.name); signature.append(socket.identifier)
  111. return tuple(signature)
  112. def tuple_of_line(line):
  113. # For creating a set of lines
  114. return tuple(tuple_of_line_element(e) for e in line)
  115. def tuple_of_line_element(line_element):
  116. return (line_element[0], tuple(line_element[1]))
  117. # A fuction for getting to the end of a Reroute.
  118. def socket_seek(start_link, links):
  119. link = start_link
  120. while(link.from_socket):
  121. for newlink in links:
  122. if link.from_socket.node.inputs:
  123. if newlink.to_socket == link.from_socket.node.inputs[0]:
  124. link=newlink; break
  125. else:
  126. break
  127. return link.from_socket
  128. # this creates fake links that have the same interface as Blender's
  129. # so that I can bypass Reroutes
  130. def clear_reroutes(links):
  131. from .node_container_common import DummyLink
  132. kept_links, rerouted_starts = [], []
  133. rerouted = []
  134. all_links = links.copy()
  135. while(all_links):
  136. link = all_links.pop()
  137. to_cls = link.to_socket.node.bl_idname
  138. from_cls = link.from_socket.node.bl_idname
  139. reroute_classes = ["NodeReroute"]
  140. if (to_cls in reroute_classes and
  141. from_cls in reroute_classes):
  142. rerouted.append(link)
  143. elif (to_cls in reroute_classes and not
  144. from_cls in reroute_classes):
  145. rerouted.append(link)
  146. elif (from_cls in reroute_classes and not
  147. to_cls in reroute_classes):
  148. rerouted_starts.append(link)
  149. else:
  150. kept_links.append(link)
  151. for start in rerouted_starts:
  152. from_socket = socket_seek(start, rerouted)
  153. new_link = DummyLink(from_socket=from_socket, to_socket=start.to_socket, nc_from=None, nc_to=None, multi_input_sort_id=start.multi_input_sort_id )
  154. kept_links.append(new_link)
  155. return kept_links
  156. def tree_from_nc(sig, base_tree):
  157. if (sig[0] == 'MANTIS_AUTOGENERATED'):
  158. sig = sig[:-2] # cut off the end part of the signature. (Why am I doing this??) # because it uses socket.name and socket.identifier
  159. # this will lead to totally untraceble bugs in the event of a change in how signatures are assigned
  160. tree = base_tree
  161. for i, path_item in enumerate(sig):
  162. if (i == 0) or (i == len(sig) - 1):
  163. continue
  164. tree = tree.nodes.get(path_item).node_tree
  165. return tree
  166. def get_node_prototype(sig, base_tree):
  167. return tree_from_nc(sig, base_tree).nodes.get( sig[-1] )
  168. ##################################################################################################
  169. # groups and changing sockets -- this is used extensively by Schema.
  170. ##################################################################################################
  171. def get_socket_maps(node):
  172. maps = [{}, {}]
  173. node_collection = ["inputs", "outputs"]
  174. links = ["from_socket", "to_socket"]
  175. for collection, map, link in zip(node_collection, maps, links):
  176. for sock in getattr(node, collection):
  177. if sock.is_linked:
  178. map[sock.identifier]=[ getattr(l, link) for l in sock.links ]
  179. else:
  180. map[sock.identifier]=sock.get("default_value")
  181. return maps
  182. def do_relink(node, s, map, in_out='INPUT', parent_name = ''):
  183. tree = node.id_data; interface_in_out = 'OUTPUT' if in_out == 'INPUT' else 'INPUT'
  184. if hasattr(node, "node_tree"):
  185. tree = node.node_tree
  186. interface_in_out=in_out
  187. from bpy.types import NodeSocket
  188. get_string = '__extend__'
  189. if s: get_string = s.identifier
  190. if val := map.get(get_string):
  191. if isinstance(val, list):
  192. for sub_val in val:
  193. # this will only happen once because it assigns s, so it is safe to do in the for loop.
  194. if s is None:
  195. # prGreen("zornpt")
  196. name = unique_socket_name(node, sub_val, tree)
  197. sock_type = sub_val.bl_idname
  198. if parent_name:
  199. interface_socket = update_interface(tree.interface, name, interface_in_out, sock_type, parent_name)
  200. if in_out =='INPUT':
  201. s = node.inputs.new(sock_type, name, identifier=interface_socket.identifier)
  202. else:
  203. s = node.outputs.new(sock_type, name, identifier=interface_socket.identifier)
  204. if parent_name == 'Array': s.display_shape='SQUARE_DOT'
  205. # then move it up and delete the other link.
  206. # this also needs to modify the interface of the node tree.
  207. #
  208. if isinstance(sub_val, NodeSocket):
  209. if in_out =='INPUT':
  210. node.id_data.links.new(input=sub_val, output=s)
  211. else:
  212. node.id_data.links.new(input=s, output=sub_val)
  213. else:
  214. try:
  215. s.default_value = val
  216. except (AttributeError, ValueError): # must be readonly or maybe it doesn't have a d.v.
  217. pass
  218. def update_interface(interface, name, in_out, sock_type, parent_name):
  219. if parent_name:
  220. if not (interface_parent := interface.items_tree.get(parent_name)):
  221. interface_parent = interface.new_panel(name=parent_name)
  222. socket = interface.new_socket(name=name,in_out=in_out, socket_type=sock_type, parent=interface_parent)
  223. if parent_name == 'Connection':
  224. in_out = 'OUTPUT' if in_out == 'INPUT' else 'INPUT' # flip this make sure connections always do both
  225. interface.new_socket(name=name,in_out=in_out, socket_type=sock_type, parent=interface_parent)
  226. return socket
  227. else:
  228. raise RuntimeError(wrapRed("Cannot add interface item to tree without specifying type."))
  229. def relink_socket_map(node, node_collection, map, item, in_out=None):
  230. from bpy.types import NodeSocket
  231. if not in_out: in_out=item.in_out
  232. if node.bl_idname in ['MantisSchemaGroup'] and item.parent and item.parent.name == 'Array':
  233. multi = False
  234. if in_out == 'INPUT':
  235. multi=True
  236. s = node_collection.new(type=item.socket_type, name=item.name, identifier=item.identifier, use_multi_input=multi)
  237. # s.link_limit = node.schema_length TODO
  238. else:
  239. s = node_collection.new(type=item.socket_type, name=item.name, identifier=item.identifier)
  240. if item.parent.name == 'Array': s.display_shape = 'SQUARE_DOT'
  241. do_relink(node, s, map)
  242. def unique_socket_name(node, other_socket, tree):
  243. name_stem = other_socket.bl_label; num=0
  244. # if hasattr(other_socket, "default_value"):
  245. # name_stem = type(other_socket.default_value).__name__
  246. for item in tree.interface.items_tree:
  247. if item.item_type == 'PANEL': continue
  248. if other_socket.is_output and item.in_out == 'INPUT': continue
  249. if not other_socket.is_output and item.in_out == 'OUTPUT': continue
  250. if name_stem in item.name: num+=1
  251. name = name_stem + '.' + str(num).zfill(3)
  252. return name
  253. ##############################
  254. # READ TREE and also Schema Solve!
  255. ##############################
  256. def init_connections(nc):
  257. c, hc = [], []
  258. for i in nc.outputs.values():
  259. for l in i.links:
  260. # if l.from_node != nc:
  261. # continue
  262. if l.is_hierarchy:
  263. hc.append(l.to_node)
  264. c.append(l.to_node)
  265. nc.hierarchy_connections = hc
  266. nc.connections = c
  267. def init_dependencies(nc):
  268. c, hc = [], []
  269. for i in nc.inputs.values():
  270. for l in i.links:
  271. # if l.to_node != nc:
  272. # continue
  273. if l.is_hierarchy:
  274. hc.append(l.from_node)
  275. c.append(l.from_node)
  276. nc.hierarchy_dependencies = hc
  277. nc.dependencies = c
  278. from .base_definitions import from_name_filter, to_name_filter
  279. def init_schema_dependencies(schema, all_nc):
  280. schema_name = schema.signature[-1]
  281. all_input_nodes = []
  282. all_output_nodes = []
  283. # so the challenge is to map these and check both ends
  284. from .base_definitions import from_name_filter, to_name_filter
  285. # go through the interface items then of course
  286. from .utilities import get_node_prototype
  287. np = get_node_prototype(schema.signature, schema.base_tree)
  288. tree = np.node_tree
  289. schema.dependencies = []
  290. schema.hierarchy_dependencies = []
  291. for item in tree.interface.items_tree:
  292. if item.item_type == 'PANEL':
  293. continue
  294. hierarchy = True
  295. hierarchy_reason=""
  296. if item.in_out == 'INPUT':
  297. c = schema.dependencies
  298. hc = schema.hierarchy_dependencies
  299. if item.parent and item.parent.name == 'Array':
  300. for t in ['SchemaArrayInput', 'SchemaArrayInputGet']:
  301. if (nc := all_nc.get( (*schema.signature, t) )):
  302. for to_link in nc.outputs[item.name].links:
  303. if to_link.to_socket in to_name_filter:
  304. # hierarchy_reason='a'
  305. hierarchy = False
  306. for from_link in schema.inputs[item.identifier].links:
  307. if from_link.from_socket in from_name_filter:
  308. hierarchy = False
  309. # hierarchy_reason='b'
  310. if from_link.from_node not in c:
  311. if hierarchy:
  312. hc.append(from_link.from_node)
  313. c.append(from_link.from_node)
  314. if item.parent and item.parent.name == 'Constant':
  315. if nc := all_nc.get((*schema.signature, 'SchemaConstInput')):
  316. for to_link in nc.outputs[item.name].links:
  317. if to_link.to_socket in to_name_filter:
  318. # hierarchy_reason='c'
  319. hierarchy = False
  320. for from_link in schema.inputs[item.identifier].links:
  321. if from_link.from_socket in from_name_filter:
  322. # hierarchy_reason='d'
  323. hierarchy = False
  324. if from_link.from_node not in c:
  325. if hierarchy:
  326. hc.append(from_link.from_node)
  327. c.append(from_link.from_node)
  328. if item.parent and item.parent.name == 'Connection':
  329. if nc := all_nc.get((*schema.signature, 'SchemaIncomingConnection')):
  330. for to_link in nc.outputs[item.name].links:
  331. if to_link.to_socket in to_name_filter:
  332. # hierarchy_reason='e'
  333. hierarchy = False
  334. for from_link in schema.inputs[item.identifier].links:
  335. if from_link.from_socket in from_name_filter:
  336. # hierarchy_reason='f'
  337. hierarchy = False
  338. if from_link.from_node not in c:
  339. if hierarchy:
  340. hc.append(from_link.from_node)
  341. c.append(from_link.from_node)
  342. def check_and_add_root(n, roots, include_non_hierarchy=False):
  343. if include_non_hierarchy == True and len(n.dependencies) > 0:
  344. return
  345. elif len(n.hierarchy_dependencies) > 0:
  346. return
  347. roots.append(n)
  348. def get_link_in_out(link):
  349. from .base_definitions import replace_types
  350. from_name, to_name = link.from_socket.node.name, link.to_socket.node.name
  351. # catch special bl_idnames and bunch the connections up
  352. if link.from_socket.node.bl_idname in replace_types:
  353. from_name = link.from_socket.node.bl_idname
  354. if link.to_socket.node.bl_idname in replace_types:
  355. to_name = link.to_socket.node.bl_idname
  356. return from_name, to_name
  357. def link_node_containers(tree_path_names, link, local_nc, from_suffix='', to_suffix=''):
  358. dummy_types = ["DUMMY", "DUMMY_SCHEMA"]
  359. from_name, to_name = get_link_in_out(link)
  360. nc_from = local_nc.get( (*tree_path_names, from_name+from_suffix) )
  361. nc_to = local_nc.get( (*tree_path_names, to_name+to_suffix))
  362. if (nc_from and nc_to):
  363. from_s, to_s = link.from_socket.name, link.to_socket.name
  364. if nc_to.node_type in dummy_types: to_s = link.to_socket.identifier
  365. if nc_from.node_type in dummy_types: from_s = link.from_socket.identifier
  366. try:
  367. connection = nc_from.outputs[from_s].connect(node=nc_to, socket=to_s, sort_id=link.multi_input_sort_id)
  368. if connection is None:
  369. prWhite(f"Already connected: {from_name}:{from_s}->{to_name}:{to_s}")
  370. return connection
  371. except KeyError as e:
  372. prRed(f"{nc_from}:{from_s} or {nc_to}:{to_s} missing; review the connections printed below:")
  373. print (nc_from.outputs.keys())
  374. print (nc_to.inputs.keys())
  375. raise e
  376. else:
  377. prRed(nc_from, nc_to, (*tree_path_names, from_name+from_suffix), (*tree_path_names, to_name+to_suffix))
  378. # for nc in local_nc.values():
  379. # prOrange(nc)
  380. raise RuntimeError(wrapRed("Link not connected: %s -> %s in tree %s" % (from_name, to_name, tree_path_names[-1])))
  381. def get_all_dependencies(nc):
  382. """ Given a NC, find all dependencies for the NC as a dict of nc.signature:nc"""
  383. nodes = []
  384. can_descend = True
  385. check_nodes = [nc]
  386. while (len(check_nodes) > 0):
  387. node = check_nodes.pop()
  388. connected_nodes = node.hierarchy_dependencies.copy()
  389. for new_node in connected_nodes:
  390. if new_node in nodes: raise GraphError()
  391. nodes.append(new_node)
  392. return nodes
  393. ##################################################################################################
  394. # misc
  395. ##################################################################################################
  396. # this function is used a lot, so it is a good target for optimization.
  397. def to_mathutils_value(socket):
  398. if hasattr(socket, "default_value"):
  399. from mathutils import Matrix, Euler, Quaternion, Vector
  400. val = socket.default_value
  401. if socket.bl_idname in ['MatrixSocket']:
  402. return socket.TellValue()
  403. else:
  404. return val
  405. else:
  406. return None
  407. def all_trees_in_tree(base_tree, selected=False):
  408. """ Recursively finds all trees referenced in a given base-tree."""
  409. # note that this is recursive but not by tail-end recursion
  410. # a while-loop is a better way to do recursion in Python.
  411. trees = [base_tree]
  412. can_descend = True
  413. check_trees = [base_tree]
  414. while (len(check_trees) > 0): # this seems innefficient, why 2 loops?
  415. new_trees = []
  416. while (len(check_trees) > 0):
  417. tree = check_trees.pop()
  418. for node in tree.nodes:
  419. if selected == True and node.select == False:
  420. continue
  421. if new_tree := getattr(node, "node_tree", None):
  422. if new_tree in trees: continue
  423. new_trees.append(new_tree)
  424. trees.append(new_tree)
  425. check_trees = new_trees
  426. return trees
  427. # this is a destructive operation, not a pure function or whatever. That isn't good but I don't care.
  428. def SugiyamaGraph(tree, iterations):
  429. from grandalf.graphs import Vertex, Edge, Graph, graph_core
  430. class defaultview(object):
  431. w,h = 1,1
  432. xz = (0,0)
  433. no_links = set()
  434. verts = {}
  435. for n in tree.nodes:
  436. has_links=False
  437. for inp in n.inputs:
  438. if inp.is_linked:
  439. has_links=True
  440. break
  441. else:
  442. no_links.add(n.name)
  443. for out in n.outputs:
  444. if out.is_linked:
  445. has_links=True
  446. break
  447. else:
  448. try:
  449. no_links.remove(n.name)
  450. except KeyError:
  451. pass
  452. if not has_links:
  453. continue
  454. v = Vertex(n.name)
  455. v.view = defaultview()
  456. v.view.xy = n.location
  457. v.view.h = n.height*2.5
  458. v.view.w = n.width*2.2
  459. verts[n.name] = v
  460. edges = []
  461. for link in tree.links:
  462. weight = 1 # maybe this is useful
  463. edges.append(Edge(verts[link.from_node.name], verts[link.to_node.name], weight) )
  464. graph = Graph(verts.values(), edges)
  465. from grandalf.layouts import SugiyamaLayout
  466. sug = SugiyamaLayout(graph.C[0]) # no idea what .C[0] is
  467. roots=[]
  468. for node in tree.nodes:
  469. has_links=False
  470. for inp in node.inputs:
  471. if inp.is_linked:
  472. has_links=True
  473. break
  474. for out in node.outputs:
  475. if out.is_linked:
  476. has_links=True
  477. break
  478. if not has_links:
  479. continue
  480. if len(node.inputs)==0:
  481. roots.append(verts[node.name])
  482. else:
  483. for inp in node.inputs:
  484. if inp.is_linked==True:
  485. break
  486. else:
  487. roots.append(verts[node.name])
  488. sug.init_all(roots=roots,)
  489. sug.draw(iterations)
  490. for v in graph.C[0].sV:
  491. for n in tree.nodes:
  492. if n.name == v.data:
  493. n.location.x = v.view.xy[1]
  494. n.location.y = v.view.xy[0]
  495. # now we can take all the input nodes and try to put them in a sensible place
  496. for n_name in no_links:
  497. n = tree.nodes.get(n_name)
  498. next_n = None
  499. next_node = None
  500. for output in n.outputs:
  501. if output.is_linked == True:
  502. next_node = output.links[0].to_node
  503. break
  504. # let's see if the next node
  505. if next_node:
  506. # need to find the other node in the same layer...
  507. other_node = None
  508. for s_input in next_node.inputs:
  509. if s_input.is_linked:
  510. other_node = s_input.links[0].from_node
  511. if other_node is n:
  512. continue
  513. else:
  514. break
  515. if other_node:
  516. n.location = other_node.location
  517. n.location.y -= other_node.height*2
  518. else: # we'll just position it next to the next node
  519. n.location = next_node.location
  520. n.location.x -= next_node.width*1.5
  521. def project_point_to_plane(point, origin, normal):
  522. return point - normal.dot(point- origin)*normal
  523. ##################################################################################################
  524. # stuff I should probably refactor!!
  525. ##################################################################################################
  526. # what in the cuss is this horrible abomination??
  527. def class_for_mantis_prototype_node(prototype_node):
  528. """ This is a class which returns a class to instantiate for
  529. the given prototype node."""
  530. #from .node_container_classes import TellClasses
  531. from . import xForm_containers, link_containers, misc_containers, primitives_containers, deformer_containers, math_containers, schema_containers
  532. classes = {}
  533. for module in [xForm_containers, link_containers, misc_containers, primitives_containers, deformer_containers, math_containers, schema_containers]:
  534. for cls in module.TellClasses():
  535. classes[cls.__name__] = cls
  536. # I could probably do a string.replace() here
  537. # But I actually think this is a bad idea since I might not
  538. # want to use this name convention in the future
  539. # this is easy enough for now, may refactor.
  540. if prototype_node.bl_idname == 'xFormArmatureNode':
  541. return classes["xFormArmature"]
  542. elif prototype_node.bl_idname == 'xFormBoneNode':
  543. return classes["xFormBone"]
  544. elif prototype_node.bl_idname == 'xFormGeometryObject':
  545. return classes["xFormGeometryObject"]
  546. elif prototype_node.bl_idname == 'linkInherit':
  547. return classes["LinkInherit"]
  548. elif prototype_node.bl_idname == 'InputFloatNode':
  549. return classes["InputFloat"]
  550. elif prototype_node.bl_idname == 'InputVectorNode':
  551. return classes["InputVector"]
  552. elif prototype_node.bl_idname == 'InputBooleanNode':
  553. return classes["InputBoolean"]
  554. elif prototype_node.bl_idname == 'InputBooleanThreeTupleNode':
  555. return classes["InputBooleanThreeTuple"]
  556. elif prototype_node.bl_idname == 'InputRotationOrderNode':
  557. return classes["InputRotationOrder"]
  558. elif prototype_node.bl_idname == 'InputTransformSpaceNode':
  559. return classes["InputTransformSpace"]
  560. elif prototype_node.bl_idname == 'InputStringNode':
  561. return classes["InputString"]
  562. elif prototype_node.bl_idname == 'InputQuaternionNode':
  563. return classes["InputQuaternion"]
  564. elif prototype_node.bl_idname == 'InputQuaternionNodeAA':
  565. return classes["InputQuaternionAA"]
  566. elif prototype_node.bl_idname == 'InputMatrixNode':
  567. return classes["InputMatrix"]
  568. elif prototype_node.bl_idname == 'MetaRigMatrixNode':
  569. return classes["InputMatrix"]
  570. elif prototype_node.bl_idname == 'InputLayerMaskNode':
  571. return classes["InputLayerMask"]
  572. elif prototype_node.bl_idname == 'GeometryCirclePrimitive':
  573. return classes["CirclePrimitive"]
  574. # every node before this point is not guarenteed to follow the pattern
  575. # but every node not checked above does follow the pattern.
  576. try:
  577. return classes[ prototype_node.bl_idname ]
  578. except KeyError:
  579. # prGreen(prototype_node.bl_idname)
  580. # prWhite(classes.keys())
  581. pass
  582. if prototype_node.bl_idname in [
  583. "NodeReroute",
  584. "NodeGroupInput",
  585. "NodeGroupOutput",
  586. "MantisNodeGroup",
  587. "NodeFrame",
  588. "MantisSchemaGroup",
  589. ]:
  590. return None
  591. prRed(prototype_node.bl_idname)
  592. raise RuntimeError(wrapOrange("Failed to create node container for: ")+wrapRed("%s" % prototype_node.bl_idname))
  593. return None
  594. # This is really, really stupid way to do this
  595. def gen_nc_input_for_data(socket):
  596. # Class List #TODO deduplicate
  597. from . import xForm_containers, link_containers, misc_containers, primitives_containers, deformer_containers, math_containers, schema_containers
  598. from .internal_containers import NoOpNode
  599. classes = {}
  600. for module in [xForm_containers, link_containers, misc_containers, primitives_containers, deformer_containers, math_containers, schema_containers]:
  601. for cls in module.TellClasses():
  602. classes[cls.__name__] = cls
  603. #
  604. socket_class_map = {
  605. "MatrixSocket" : classes["InputMatrix"],
  606. "xFormSocket" : None,
  607. "RelationshipSocket" : NoOpNode,
  608. "DeformerSocket" : NoOpNode,
  609. "GeometrySocket" : classes["InputExistingGeometryData"],
  610. "EnableSocket" : classes["InputBoolean"],
  611. "HideSocket" : classes["InputBoolean"],
  612. #
  613. "DriverSocket" : None,
  614. "DriverVariableSocket" : None,
  615. "FCurveSocket" : None,
  616. "KeyframeSocket" : None,
  617. "BoneCollectionSocket" : classes["InputString"],
  618. #
  619. "xFormParameterSocket" : None,
  620. "ParameterBoolSocket" : classes["InputBoolean"],
  621. "ParameterIntSocket" : classes["InputFloat"], #TODO: make an Int node for this
  622. "ParameterFloatSocket" : classes["InputFloat"],
  623. "ParameterVectorSocket" : classes["InputVector"],
  624. "ParameterStringSocket" : classes["InputString"],
  625. #
  626. "TransformSpaceSocket" : classes["InputTransformSpace"],
  627. "BooleanSocket" : classes["InputBoolean"],
  628. "BooleanThreeTupleSocket" : classes["InputBooleanThreeTuple"],
  629. "RotationOrderSocket" : classes["InputRotationOrder"],
  630. "QuaternionSocket" : None,
  631. "QuaternionSocketAA" : None,
  632. "IntSocket" : classes["InputFloat"],
  633. "StringSocket" : classes["InputString"],
  634. #
  635. "BoolUpdateParentNode" : classes["InputBoolean"],
  636. "IKChainLengthSocket" : classes["InputFloat"],
  637. "EnumInheritScale" : classes["InputString"],
  638. "EnumRotationMix" : classes["InputString"],
  639. "EnumRotationMixCopyTransforms" : classes["InputString"],
  640. "EnumMaintainVolumeStretchTo" : classes["InputString"],
  641. "EnumRotationStretchTo" : classes["InputString"],
  642. "EnumTrackAxis" : classes["InputString"],
  643. "EnumUpAxis" : classes["InputString"],
  644. "EnumLockAxis" : classes["InputString"],
  645. "EnumLimitMode" : classes["InputString"],
  646. "EnumYScaleMode" : classes["InputString"],
  647. "EnumXZScaleMode" : classes["InputString"],
  648. "EnumCurveSocket" : classes["InputString"],
  649. "EnumMetaRigSocket" : classes["InputString"],
  650. # Deformers
  651. "EnumSkinning" : classes["InputString"],
  652. #
  653. "FloatSocket" : classes["InputFloat"],
  654. "FloatFactorSocket" : classes["InputFloat"],
  655. "FloatPositiveSocket" : classes["InputFloat"],
  656. "FloatAngleSocket" : classes["InputFloat"],
  657. "VectorSocket" : classes["InputVector"],
  658. "VectorEulerSocket" : classes["InputVector"],
  659. "VectorTranslationSocket" : classes["InputVector"],
  660. "VectorScaleSocket" : classes["InputVector"],
  661. # Drivers
  662. "EnumDriverVariableType" : classes["InputString"],
  663. "EnumDriverVariableEvaluationSpace" : classes["InputString"],
  664. "EnumDriverRotationMode" : classes["InputString"],
  665. "EnumDriverType" : classes["InputString"],
  666. "EnumKeyframeInterpTypeSocket" : classes["InputString"],
  667. "EnumKeyframeBezierHandleTypeSocket" : classes["InputString"],
  668. # Math
  669. "MathFloatOperation" : classes["InputString"],
  670. "MathVectorOperation" : classes["InputString"],
  671. "MatrixTransformOperation" : classes["InputString"],
  672. # Schema
  673. "WildcardSocket" : None,
  674. }
  675. return socket_class_map.get(socket.bl_idname, None)
  676. ####################################
  677. # CURVE STUFF
  678. ####################################
  679. def rotate(l, n):
  680. if ( not ( isinstance(n, int) ) ): #print an error if n is not an int:
  681. raise TypeError("List slice must be an int, not float.")
  682. return l[n:] + l[:n]
  683. #from stack exchange, thanks YXD
  684. # this stuff could be branchless but I don't use it much TODO
  685. def cap(val, maxValue):
  686. if (val > maxValue):
  687. return maxValue
  688. return val
  689. def capMin(val, minValue):
  690. if (val < minValue):
  691. return minValue
  692. return val
  693. # def wrap(val, min=0, max=1):
  694. # raise NotImplementedError
  695. #wtf this doesn't do anything even remotely similar to wrap, or useful in
  696. # HACK BAD FIXME UNBREAK ME BAD
  697. # I don't understand what this function does but I am using it in multiple places?
  698. def wrap(val, maxValue, minValue = None):
  699. if (val > maxValue):
  700. return (-1 * ((maxValue - val) + 1))
  701. if ((minValue) and (val < minValue)):
  702. return (val + maxValue)
  703. return val
  704. #TODO clean this up
  705. def layerMaskCompare(mask_a, mask_b):
  706. compare = 0
  707. for a, b in zip(mask_a, mask_b):
  708. if (a != b):
  709. compare+=1
  710. if (compare == 0):
  711. return True
  712. return False
  713. def lerpVal(a, b, fac = 0.5):
  714. return a + ( (b-a) * fac)
  715. def RibbonMeshEdgeLengths(m, ribbon):
  716. tE = ribbon[0]; bE = ribbon[1]; c = ribbon[2]
  717. lengths = []
  718. for i in range( len( tE ) ): #tE and bE are same length
  719. if (c == True):
  720. v1NextInd = tE[wrap((i+1), len(tE) - 1)]
  721. else:
  722. v1NextInd = tE[cap((i+1) , len(tE) - 1 )]
  723. v1 = m.vertices[tE[i]]; v1Next = m.vertices[v1NextInd]
  724. if (c == True):
  725. v2NextInd = bE[wrap((i+1), len(bE) - 1)]
  726. else:
  727. v2NextInd = bE[cap((i+1) , len(bE) - 1 )]
  728. v2 = m.vertices[bE[i]]; v2Next = m.vertices[v2NextInd]
  729. v = v1.co.lerp(v2.co, 0.5); vNext = v1Next.co.lerp(v2Next.co, 0.5)
  730. # get the center, edges may not be straight so total length
  731. # of one edge may be more than the ribbon center's length
  732. lengths.append(( v - vNext ).length)
  733. return lengths
  734. def EnsureCurveIsRibbon(crv, defaultRadius = 0.1):
  735. crvRadius = 0
  736. if (crv.data.bevel_depth == 0):
  737. crvRadius = crv.data.extrude
  738. else: #Set ribbon from bevel depth
  739. crvRadius = crv.data.bevel_depth
  740. crv.data.bevel_depth = 0
  741. crv.data.extrude = crvRadius
  742. if (crvRadius == 0):
  743. crv.data.extrude = defaultRadius
  744. def SetRibbonData(m, ribbon):
  745. #maybe this could be incorporated into the DetectWireEdges function?
  746. #maybe I can check for closed poly curves here? under what other circumstance
  747. # will I find the ends of the wire have identical coordinates?
  748. ribbonData = []
  749. tE = ribbon[0].copy(); bE = ribbon[1].copy()# circle = ribbon[2]
  750. #
  751. lengths = RibbonMeshEdgeLengths(m, ribbon)
  752. lengths.append(0)
  753. totalLength = sum(lengths)
  754. # m.calc_normals() #calculate normals
  755. # it appears this has been removed.
  756. for i, (t, b) in enumerate(zip(tE, bE)):
  757. ind = wrap( (i + 1), len(tE) - 1 )
  758. tNext = tE[ind]; bNext = bE[ind]
  759. ribbonData.append( ( (t,b), (tNext, bNext), lengths[i] ) )
  760. #if this is a circle, the last v in vertData has a length, otherwise 0
  761. return ribbonData, totalLength
  762. def mesh_from_curve(crv, context,):
  763. """Utility function for converting a mesh to a curve
  764. which will return the correct mesh even with modifiers"""
  765. import bpy
  766. if (len(crv.modifiers) > 0):
  767. do_unlink = False
  768. if (not context.scene.collection.all_objects.get(crv.name)):
  769. context.collection.objects.link(crv) # i guess this forces the dg to update it?
  770. do_unlink = True
  771. dg = context.view_layer.depsgraph
  772. # just gonna modify it for now lol
  773. EnsureCurveIsRibbon(crv)
  774. # try:
  775. dg.update()
  776. mOb = crv.evaluated_get(dg)
  777. m = bpy.data.meshes.new_from_object(mOb)
  778. m.name=crv.data.name+'_mesh'
  779. if (do_unlink):
  780. context.collection.objects.unlink(crv)
  781. return m
  782. # except: #dg is None?? # FIX THIS BUG BUG BUG
  783. # print ("Warning: could not apply modifiers on curve")
  784. # return bpy.data.meshes.new_from_object(crv)
  785. else: # (ಥ﹏ಥ) why can't I just use this !
  786. # for now I will just do it like this
  787. EnsureCurveIsRibbon(crv)
  788. return bpy.data.meshes.new_from_object(crv)
  789. def DetectRibbon(f, bm, skipMe):
  790. fFirst = f.index
  791. cont = True
  792. circle = False
  793. tEdge, bEdge = [],[]
  794. while (cont == True):
  795. skipMe.add(f.index)
  796. tEdge.append (f.loops[0].vert.index) # top-left
  797. bEdge.append (f.loops[3].vert.index) # bottom-left
  798. nEdge = bm.edges.get([f.loops[1].vert, f.loops[2].vert])
  799. nFaces = nEdge.link_faces
  800. if (len(nFaces) == 1):
  801. cont = False
  802. else:
  803. for nFace in nFaces:
  804. if (nFace != f):
  805. f = nFace
  806. break
  807. if (f.index == fFirst):
  808. cont = False
  809. circle = True
  810. if (cont == False): # we've reached the end, get the last two:
  811. tEdge.append (f.loops[1].vert.index) # top-right
  812. bEdge.append (f.loops[2].vert.index) # bottom-right
  813. # this will create a loop for rings --
  814. # "the first shall be the last and the last shall be first"
  815. return (tEdge,bEdge,circle)
  816. def DetectRibbons(m, fReport = None):
  817. # Returns list of vertex indices belonging to ribbon mesh edges
  818. # NOTE: this assumes a mesh object with only ribbon meshes
  819. # ---DO NOT call this script with a mesh that isn't a ribbon!--- #
  820. import bmesh
  821. bm = bmesh.new()
  822. bm.from_mesh(m)
  823. mIslands, mIsland = [], []
  824. skipMe = set()
  825. bm.faces.ensure_lookup_table()
  826. #first, get a list of mesh islands
  827. for f in bm.faces:
  828. if (f.index in skipMe):
  829. continue #already done here
  830. checkMe = [f]
  831. while (len(checkMe) > 0):
  832. facesFound = 0
  833. for f in checkMe:
  834. if (f.index in skipMe):
  835. continue #already done here
  836. mIsland.append(f)
  837. skipMe.add(f.index)
  838. for e in f.edges:
  839. checkMe += e.link_faces
  840. if (facesFound == 0):
  841. #this is the last iteration
  842. mIslands.append(mIsland)
  843. checkMe, mIsland = [], []
  844. ribbons = []
  845. skipMe = set() # to store ends already checked
  846. for mIsl in mIslands:
  847. ribbon = None
  848. first = float('inf')
  849. for f in mIsl:
  850. if (f.index in skipMe):
  851. continue #already done here
  852. if (f.index < first):
  853. first = f.index
  854. adjF = 0
  855. for e in f.edges:
  856. adjF+= (len(e.link_faces) - 1)
  857. # every face other than this one is added to the list
  858. if (adjF == 1):
  859. ribbon = (DetectRibbon(f, bm, skipMe) )
  860. break
  861. if (ribbon == None):
  862. ribbon = (DetectRibbon(bm.faces[first], bm, skipMe) )
  863. ribbons.append(ribbon)
  864. # print (ribbons)
  865. return ribbons
  866. def data_from_ribbon_mesh(m, factorsList, mat, ribbons = None, fReport = None):
  867. #Note, factors list should be equal in length the the number of wires
  868. #Now working for multiple wires, ugly tho
  869. if (ribbons == None):
  870. ribbons = DetectRibbons(m, fReport=fReport)
  871. if (ribbons is None):
  872. if (fReport):
  873. fReport(type = {'ERROR'}, message="No ribbon to get data from.")
  874. else:
  875. print ("No ribbon to get data from.")
  876. return None
  877. ret = []
  878. for factors, ribbon in zip(factorsList, ribbons):
  879. points = []
  880. widths = []
  881. normals = []
  882. ribbonData, totalLength = SetRibbonData(m, ribbon)
  883. for fac in factors:
  884. if (fac == 0):
  885. data = ribbonData[0]
  886. curFac = 0
  887. elif (fac == 1):
  888. data = ribbonData[-1]
  889. curFac = 0
  890. else:
  891. targetLength = totalLength * fac
  892. data = ribbonData[0]
  893. curLength = 0
  894. for ( (t, b), (tNext, bNext), length,) in ribbonData:
  895. if (curLength >= targetLength):
  896. break
  897. curLength += length
  898. data = ( (t, b), (tNext, bNext), length,)
  899. targetLengthAtEdge = (curLength - targetLength)
  900. if (targetLength == 0):
  901. curFac = 0
  902. elif (targetLength == totalLength):
  903. curFac = 1
  904. else:
  905. try:
  906. curFac = 1 - (targetLengthAtEdge/ data[2]) #length
  907. except ZeroDivisionError:
  908. curFac = 0
  909. if (fReport):
  910. fReport(type = {'WARNING'}, message="Division by Zero.")
  911. else:
  912. prRed ("Division by Zero Error in evaluating data from curve.")
  913. t1 = m.vertices[data[0][0]]; b1 = m.vertices[data[0][1]]
  914. t2 = m.vertices[data[1][0]]; b2 = m.vertices[data[1][1]]
  915. #location
  916. loc1 = (t1.co).lerp(b1.co, 0.5)
  917. loc2 = (t2.co).lerp(b2.co, 0.5)
  918. #width
  919. w1 = (t1.co - b1.co).length/2
  920. w2 = (t2.co - b2.co).length/2 #radius, not diameter
  921. #normal
  922. n1 = (t1.normal).slerp(b1.normal, 0.5)
  923. n2 = (t1.normal).slerp(b2.normal, 0.5)
  924. if ((data[0][0] > data[1][0]) and (ribbon[2] == False)):
  925. curFac = 0
  926. #don't interpolate if at the end of a ribbon that isn't circular
  927. if ( 0 < curFac < 1):
  928. outPoint = loc1.lerp(loc2, curFac)
  929. outNorm = n1.lerp(n2, curFac)
  930. outWidth = w1 + ( (w2-w1) * curFac)
  931. elif (curFac <= 0):
  932. outPoint = loc1.copy()
  933. outNorm = n1
  934. outWidth = w1
  935. elif (curFac >= 1):
  936. outPoint = loc2.copy()
  937. outNorm = n2
  938. outWidth = w2
  939. outPoint = mat @ outPoint
  940. outNorm.normalize()
  941. points.append ( outPoint.copy() ) #copy because this is an actual vertex location
  942. widths.append ( outWidth )
  943. normals.append( outNorm )
  944. ret.append( (points, widths, normals) )
  945. return ret # this is a list of tuples containing three lists
  946. #This bisection search is generic, and it searches based on the
  947. # magnitude of the error, rather than the sign.
  948. # If the sign of the error is meaningful, a simpler function
  949. # can be used.
  950. def do_bisect_search_by_magnitude(
  951. owner,
  952. attribute,
  953. index = None,
  954. test_function = None,
  955. modify = None,
  956. max_iterations = 10000,
  957. threshold = 0.0001,
  958. thresh2 = 0.0005,
  959. context = None,
  960. update_dg = None,
  961. ):
  962. from math import floor
  963. i = 0; best_so_far = 0; best = float('inf')
  964. min = 0; center = max_iterations//2; max = max_iterations
  965. # enforce getting the absolute value, in case the function has sign information
  966. # The sign may be useful in a sign-aware bisect search, but this one is more robust!
  967. test = lambda : abs(test_function(owner, attribute, index, context = context,))
  968. while (i <= max_iterations):
  969. upper = (max - ((max-center))//2)
  970. modify(owner, attribute, index, upper, context = context); error1 = test()
  971. lower = (center - ((center-min))//2)
  972. modify(owner, attribute, index, lower, context = context); error2 = test()
  973. if (error1 < error2):
  974. min = center
  975. center, check = upper, upper
  976. error = error1
  977. else:
  978. max = center
  979. center, check = lower, lower
  980. error = error2
  981. if (error <= threshold) or (min == max-1):
  982. break
  983. if (error < thresh2):
  984. j = min
  985. while (j < max):
  986. modify(owner, attribute, index, j * 1/max_iterations, context = context)
  987. error = test()
  988. if (error < best):
  989. best_so_far = j; best = error
  990. if (error <= threshold):
  991. break
  992. j+=1
  993. else: # loop has completed without finding a solution
  994. i = best_so_far; error = test()
  995. modify(owner, attribute, index, best_so_far, context = context)
  996. break
  997. if (error < best):
  998. best_so_far = check; best = error
  999. i+=1
  1000. if update_dg:
  1001. update_dg.update()
  1002. else: # Loop has completed without finding a solution
  1003. i = best_so_far
  1004. modify(owner, attribute, best_so_far, context = context); i+=1