489 lines
15 KiB
Python
489 lines
15 KiB
Python
# SPDX-License-Identifier: GPL-2.0-or-later
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import bpy
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import math
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import inspect
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import functools
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from mathutils import Matrix, Vector, Euler
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from itertools import count
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from .errors import MetarigError
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from .collections import ensure_collection
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from .naming import change_name_side, get_name_side, Side
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WGT_PREFIX = "WGT-" # Prefix for widget objects
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#=============================================
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# Widget creation
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#=============================================
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def obj_to_bone(obj, rig, bone_name, bone_transform_name=None):
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""" Places an object at the location/rotation/scale of the given bone.
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"""
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if bpy.context.mode == 'EDIT_ARMATURE':
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raise MetarigError("obj_to_bone(): does not work while in edit mode")
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bone = rig.pose.bones[bone_name]
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loc = bone.custom_shape_translation
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rot = bone.custom_shape_rotation_euler
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scale = Vector(bone.custom_shape_scale_xyz)
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if bone.use_custom_shape_bone_size:
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scale *= bone.length
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if bone_transform_name is not None:
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bone = rig.pose.bones[bone_transform_name]
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elif bone.custom_shape_transform:
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bone = bone.custom_shape_transform
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shape_mat = Matrix.LocRotScale(loc, Euler(rot), scale)
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obj.rotation_mode = 'XYZ'
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obj.matrix_basis = rig.matrix_world @ bone.bone.matrix_local @ shape_mat
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def create_widget(rig, bone_name, bone_transform_name=None, *, widget_name=None, widget_force_new=False, subsurf=0):
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""" Creates an empty widget object for a bone, and returns the object.
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"""
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assert rig.mode != 'EDIT'
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from ..base_generate import BaseGenerator
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scene = bpy.context.scene
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bone = rig.pose.bones[bone_name]
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# Access the current generator instance when generating (ugh, globals)
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generator = BaseGenerator.instance
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if generator:
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collection = generator.widget_collection
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else:
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collection = ensure_collection(bpy.context, 'WGTS_' + rig.name, hidden=True)
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use_mirror = generator and generator.use_mirror_widgets
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if use_mirror:
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bone_mid_name = change_name_side(bone_name, Side.MIDDLE)
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obj_name = widget_name or WGT_PREFIX + rig.name + '_' + bone_name
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reuse_mesh = None
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# Check if it already exists in the scene
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if not widget_force_new:
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obj = None
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if generator:
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# Check if the widget was already generated
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if bone_name in generator.new_widget_table:
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return None
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# If re-generating, check widgets used by the previous rig
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obj = generator.old_widget_table.get(bone_name)
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if not obj:
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# Search the scene by name
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obj = scene.objects.get(obj_name)
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if obj and obj.library:
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local_objs = [obj for obj in scene.objects if obj.name == obj_name and not obj.library]
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obj = local_objs[0] if local_objs else None
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if obj:
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# Record the generated widget
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if generator:
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generator.new_widget_table[bone_name] = obj
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# Re-add to the collection if not there for some reason
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if obj.name not in collection.objects:
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collection.objects.link(obj)
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# Flip scale for originally mirrored widgets
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if obj.scale.x < 0 and bone.custom_shape_scale_xyz.x > 0:
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bone.custom_shape_scale_xyz.x *= -1
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# Move object to bone position, in case it changed
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obj_to_bone(obj, rig, bone_name, bone_transform_name)
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return None
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# Create a linked duplicate of the widget assigned in the metarig
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reuse_widget = rig.pose.bones[bone_name].custom_shape
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if reuse_widget:
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subsurf = 0
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reuse_mesh = reuse_widget.data
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# Create a linked duplicate with the mirror widget
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if not reuse_mesh and use_mirror and bone_mid_name != bone_name:
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reuse_mesh = generator.widget_mirror_mesh.get(bone_mid_name)
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# Create an empty mesh datablock if not linking
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if reuse_mesh:
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mesh = reuse_mesh
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elif use_mirror and bone_mid_name != bone_name:
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# When mirroring, untag side from mesh name, and remember it
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mesh = bpy.data.meshes.new(change_name_side(obj_name, Side.MIDDLE))
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generator.widget_mirror_mesh[bone_mid_name] = mesh
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else:
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mesh = bpy.data.meshes.new(obj_name)
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# Create the object
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obj = bpy.data.objects.new(obj_name, mesh)
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collection.objects.link(obj)
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# Add the subdivision surface modifier
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if subsurf > 0:
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mod = obj.modifiers.new("subsurf", 'SUBSURF')
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mod.levels = subsurf
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# Record the generated widget
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if generator:
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generator.new_widget_table[bone_name] = obj
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# Flip scale for right side if mirroring widgets
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if use_mirror and get_name_side(bone_name) == Side.RIGHT:
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if bone.custom_shape_scale_xyz.x > 0:
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bone.custom_shape_scale_xyz.x *= -1
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# Move object to bone position and set layers
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obj_to_bone(obj, rig, bone_name, bone_transform_name)
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if reuse_mesh:
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return None
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return obj
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#=============================================
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# Widget choice dropdown
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#=============================================
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_registered_widgets = {}
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def _get_valid_args(callback, skip):
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spec = inspect.getfullargspec(callback)
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return set(spec.args[skip:] + spec.kwonlyargs)
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def register_widget(name, callback, **default_args):
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unwrapped = inspect.unwrap(callback)
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if unwrapped != callback:
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valid_args = _get_valid_args(unwrapped, 1)
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else:
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valid_args = _get_valid_args(callback, 2)
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_registered_widgets[name] = (callback, valid_args, default_args)
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def layout_widget_dropdown(layout, props, prop_name, **kwargs):
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"Create a UI dropdown to select a widget from the known list."
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id_store = bpy.context.window_manager
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rigify_widgets = id_store.rigify_widgets
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rigify_widgets.clear()
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for name in sorted(_registered_widgets):
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item = rigify_widgets.add()
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item.name = name
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layout.prop_search(props, prop_name, id_store, "rigify_widgets", **kwargs)
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def create_registered_widget(obj, bone_name, widget_id, **kwargs):
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try:
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callback, valid_args, default_args = _registered_widgets[widget_id]
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except KeyError:
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raise MetarigError("Unknown widget name: " + widget_id)
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# Convert between radius and size
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if kwargs.get('size') and 'size' not in valid_args:
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if 'radius' in valid_args and not kwargs.get('radius'):
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kwargs['radius'] = kwargs['size'] / 2
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elif kwargs.get('radius') and 'radius' not in valid_args:
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if 'size' in valid_args and not kwargs.get('size'):
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kwargs['size'] = kwargs['radius'] * 2
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args = { **default_args, **kwargs }
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return callback(obj, bone_name, **{ k:v for k,v in args.items() if k in valid_args})
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#=============================================
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# Widget geometry
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#=============================================
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class GeometryData:
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def __init__(self):
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self.verts = []
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self.edges = []
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self.faces = []
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def widget_generator(generate_func=None, *, register=None, subsurf=0):
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if generate_func is None:
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return functools.partial(widget_generator, register=register, subsurf=subsurf)
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"""
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Decorator that encapsulates a call to create_widget, and only requires
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the actual function to fill the provided vertex and edge lists.
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Accepts parameters of create_widget, plus any keyword arguments the
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wrapped function has.
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"""
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@functools.wraps(generate_func)
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def wrapper(rig, bone_name, bone_transform_name=None, widget_name=None, widget_force_new=False, **kwargs):
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obj = create_widget(rig, bone_name, bone_transform_name, widget_name=widget_name, widget_force_new=widget_force_new, subsurf=subsurf)
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if obj is not None:
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geom = GeometryData()
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generate_func(geom, **kwargs)
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mesh = obj.data
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mesh.from_pydata(geom.verts, geom.edges, geom.faces)
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mesh.update()
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return obj
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else:
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return None
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if register:
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register_widget(register, wrapper)
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return wrapper
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def generate_lines_geometry(geom, points, *, matrix=None, closed_loop=False):
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"""
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Generates a polyline using given points, optionally closing the loop.
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"""
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assert len(points) >= 2
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base = len(geom.verts)
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for i, raw_point in enumerate(points):
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point = Vector(raw_point).to_3d()
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if matrix:
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point = matrix @ point
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geom.verts.append(point)
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if i > 0:
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geom.edges.append((base + i - 1, base + i))
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if closed_loop:
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geom.edges.append((len(geom.verts) - 1, base))
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def generate_circle_geometry(geom, center, radius, *, matrix=None, angle_range=None,
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steps=24, radius_x=None, depth_x=0):
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"""
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Generates a circle, adding vertices and edges to the lists.
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center, radius: parameters of the circle
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matrix: transformation matrix (by default the circle is in the XY plane)
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angle_range: pair of angles to generate an arc of the circle
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steps: number of edges to cover the whole circle (reduced for arcs)
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"""
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assert steps >= 3
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start = 0
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delta = math.pi * 2 / steps
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if angle_range:
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start, end = angle_range
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if start == end:
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steps = 1
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else:
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steps = max(3, math.ceil(abs(end - start) / delta) + 1)
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delta = (end - start) / (steps - 1)
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if radius_x is None:
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radius_x = radius
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center = Vector(center).to_3d() # allow 2d center
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points = []
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for i in range(steps):
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angle = start + delta * i
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x = math.cos(angle)
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y = math.sin(angle)
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points.append(center + Vector((x * radius_x, y * radius, x * x * depth_x)))
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generate_lines_geometry(geom, points, matrix=matrix, closed_loop=not angle_range)
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def generate_circle_hull_geometry(geom, points, radius, gap, *, matrix=None, steps=24):
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"""
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Given a list of 2D points forming a convex hull, generate a contour around
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it, with each point being circumscribed with a circle arc of given radius,
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and keeping the given distance gap from the lines connecting the circles.
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"""
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assert radius >= gap
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if len(points) <= 1:
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if points:
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generate_circle_geometry(
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geom, points[0], radius,
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matrix=matrix, steps=steps
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)
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return
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base = len(geom.verts)
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points_ex = [points[-1], *points, points[0]]
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agap = math.asin(gap / radius)
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for i, pprev, pcur, pnext in zip(count(0), points_ex[0:], points_ex[1:], points_ex[2:]):
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vprev = pprev - pcur
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vnext = pnext - pcur
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# Compute bearings to adjacent points
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aprev = math.atan2(vprev.y, vprev.x)
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anext = math.atan2(vnext.y, vnext.x)
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if anext <= aprev:
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anext += math.pi * 2
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# Adjust gap for circles that are too close
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aprev += max(agap, math.acos(min(1, vprev.length/radius/2)))
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anext -= max(agap, math.acos(min(1, vnext.length/radius/2)))
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if anext > aprev:
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if len(geom.verts) > base:
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geom.edges.append((len(geom.verts)-1, len(geom.verts)))
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generate_circle_geometry(
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geom, pcur, radius, angle_range=(aprev, anext),
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matrix=matrix, steps=steps
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)
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if len(geom.verts) > base:
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geom.edges.append((len(geom.verts)-1, base))
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def create_circle_polygon(number_verts, axis, radius=1.0, head_tail=0.0):
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""" Creates a basic circle around of an axis selected.
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number_verts: number of vertices of the polygon
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axis: axis normal to the circle
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radius: the radius of the circle
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head_tail: where along the length of the bone the circle is (0.0=head, 1.0=tail)
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"""
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verts = []
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edges = []
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angle = 2 * math.pi / number_verts
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i = 0
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assert(axis in 'XYZ')
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while i < (number_verts):
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a = math.cos(i * angle)
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b = math.sin(i * angle)
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if axis == 'X':
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verts.append((head_tail, a * radius, b * radius))
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elif axis == 'Y':
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verts.append((a * radius, head_tail, b * radius))
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elif axis == 'Z':
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verts.append((a * radius, b * radius, head_tail))
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if i < (number_verts - 1):
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edges.append((i , i + 1))
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i += 1
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edges.append((0, number_verts - 1))
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return verts, edges
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#=============================================
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# Widget transformation
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#=============================================
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def adjust_widget_axis(obj, axis='y', offset=0.0):
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mesh = obj.data
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if axis[0] == '-':
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s = -1.0
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axis = axis[1]
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else:
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s = 1.0
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trans_matrix = Matrix.Translation((0.0, offset, 0.0))
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rot_matrix = Matrix.Diagonal((1.0, s, 1.0, 1.0))
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if axis == "x":
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rot_matrix = Matrix.Rotation(-s*math.pi/2, 4, 'Z')
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trans_matrix = Matrix.Translation((offset, 0.0, 0.0))
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elif axis == "z":
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rot_matrix = Matrix.Rotation(s*math.pi/2, 4, 'X')
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trans_matrix = Matrix.Translation((0.0, 0.0, offset))
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matrix = trans_matrix @ rot_matrix
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for vert in mesh.vertices:
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vert.co = matrix @ vert.co
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def adjust_widget_transform_mesh(obj, matrix, local=None):
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"""Adjust the generated widget by applying a correction matrix to the mesh.
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If local is false, the matrix is in world space.
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If local is True, it's in the local space of the widget.
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If local is a bone, it's in the local space of the bone.
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"""
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if obj:
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if local is not True:
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if local:
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assert isinstance(local, bpy.types.PoseBone)
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bonemat = local.id_data.matrix_world @ local.bone.matrix_local
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matrix = bonemat @ matrix @ bonemat.inverted()
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obmat = obj.matrix_basis
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matrix = obmat.inverted() @ matrix @ obmat
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obj.data.transform(matrix)
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def write_widget(obj, name='thing', use_size=True):
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""" Write a mesh object as a python script for widget use.
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"""
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script = ""
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script += "@widget_generator\n"
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script += "def create_"+name+"_widget(geom";
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if use_size:
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script += ", *, size=1.0"
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script += "):\n"
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# Vertices
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szs = "*size" if use_size else ""
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width = 2 if use_size else 3
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script += " geom.verts = ["
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for i, v in enumerate(obj.data.vertices):
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script += "({:g}{}, {:g}{}, {:g}{}),".format(v.co[0], szs, v.co[1], szs, v.co[2], szs)
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script += "\n " if i % width == (width - 1) else " "
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script += "]\n"
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# Edges
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script += " geom.edges = ["
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for i, e in enumerate(obj.data.edges):
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script += "(" + str(e.vertices[0]) + ", " + str(e.vertices[1]) + "),"
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script += "\n " if i % 10 == 9 else " "
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script += "]\n"
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# Faces
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if obj.data.polygons:
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script += " geom.faces = ["
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for i, f in enumerate(obj.data.polygons):
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script += "(" + ", ".join(str(v) for v in f.vertices) + "),"
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script += "\n " if i % 10 == 9 else " "
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script += "]\n"
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return script
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