mirror of
https://github.com/IfcOpenShell/IfcOpenShell.git
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563 lines
25 KiB
Python
563 lines
25 KiB
Python
import bpy
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import bmesh
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import ifcopenshell.util.unit
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from mathutils import Vector, Matrix
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from blenderbim.bim.module.geometry.helper import Helper
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Z_AXIS = Vector((0, 0, 1))
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X_AXIS = Vector((1, 0, 0))
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EPSILON = 1e-6
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class Usecase:
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def __init__(self, file, **settings):
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# TODO: This usecase currently depends on Blender's data model
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self.file = file
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self.settings = {
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"context": None, # IfcGeometricRepresentationContext
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"blender_object": None, # This is (currently) a Blender object, hence this depends on Blender now
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"geometry": None, # This is (currently) a Blender data object, hence this depends on Blender now
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"coordinate_offset": None, # Optionally apply a vector offset to all coordinates
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"total_items": 1, # How many representation items to create
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"unit_scale": None, # A scale factor to apply for all vectors in case the unit is different
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"should_force_faceted_brep": False, # If we should force faceted breps for meshes
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"should_force_triangulation": False, # If we should force triangulation for meshes
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"is_point_cloud": False, # If the geometry is a point cloud
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# Possible IFC representation classes:
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# IfcExtrudedAreaSolid/IfcRectangleProfileDef
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# IfcExtrudedAreaSolid/IfcCircleProfileDef
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# IfcExtrudedAreaSolid/IfcArbitraryClosedProfileDef
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# IfcExtrudedAreaSolid/IfcArbitraryProfileDefWithVoids
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# IfcExtrudedAreaSolid/IfcMaterialProfileSetUsage
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"ifc_representation_class": None, # Whether to cast a mesh into a particular class
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"profile_set_usage": None, # The material profile set if the extrusion requires it
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}
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self.ifc_vertices = []
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for key, value in settings.items():
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self.settings[key] = value
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def execute(self):
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if (
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isinstance(self.settings["geometry"], bpy.types.Mesh)
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and self.settings["geometry"] == self.settings["blender_object"].data
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):
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self.evaluate_geometry()
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if self.settings["unit_scale"] is None:
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self.settings["unit_scale"] = ifcopenshell.util.unit.calculate_unit_scale(self.file)
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if self.settings["context"].ContextType == "Model":
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return self.create_model_representation()
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elif self.settings["context"].ContextType == "Plan":
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return self.create_plan_representation()
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return self.create_variable_representation()
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def should_triangulate_face(self, face, threshold=EPSILON):
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vz = face.normal
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co = face.verts[0].co
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if vz.length < 0.5:
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return True
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if abs(vz.z) < 0.5:
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vx = vz.cross(Z_AXIS)
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else:
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vx = vz.cross(X_AXIS)
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vy = vx.cross(vz)
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tM = Matrix(
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[[vx.x, vy.x, vz.x, co.x], [vx.y, vy.y, vz.y, co.y], [vx.z, vy.z, vz.z, co.z], [0, 0, 0, 1]]
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).inverted()
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return any([abs((tM @ v.co).z) > threshold for v in face.verts])
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def evaluate_geometry(self):
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for modifier in self.settings["blender_object"].modifiers:
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if modifier.type == "BOOLEAN":
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modifier.show_viewport = False
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mesh = self.settings["blender_object"].evaluated_get(bpy.context.evaluated_depsgraph_get()).to_mesh()
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bm = bmesh.new()
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bm.from_mesh(mesh)
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if self.settings["should_force_triangulation"]:
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faces = bm.faces
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else:
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faces = [f for f in bm.faces if self.should_triangulate_face(f)]
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bmesh.ops.triangulate(bm, faces=faces)
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bm.to_mesh(mesh)
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mesh.update()
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bm.free()
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del bm
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self.settings["geometry"] = mesh
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for modifier in self.settings["blender_object"].modifiers:
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if modifier.type == "BOOLEAN":
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modifier.show_viewport = True
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def create_model_representation(self):
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if self.settings["context"].is_a() == "IfcGeometricRepresentationContext":
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return self.create_variable_representation()
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if self.settings["context"].ContextIdentifier == "Annotation":
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return self.create_geometric_set_representation()
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elif self.settings["context"].ContextIdentifier == "Axis":
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return self.create_curve3d_representation()
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elif self.settings["context"].ContextIdentifier == "Body":
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return self.create_variable_representation()
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elif self.settings["context"].ContextIdentifier == "Box":
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return self.create_box_representation()
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elif self.settings["context"].ContextIdentifier == "Clearance":
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return self.create_variable_representation()
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elif self.settings["context"].ContextIdentifier == "CoG":
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return self.create_cog_representation()
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elif self.settings["context"].ContextIdentifier == "FootPrint":
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return self.create_variable_representation()
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elif self.settings["context"].ContextIdentifier == "Reference":
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if self.settings["context"].TargetView == "GRAPH_VIEW":
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return self.create_structural_reference_representation()
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elif self.settings["context"].ContextIdentifier == "Profile":
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return self.create_curve3d_representation()
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elif self.settings["context"].ContextIdentifier == "SurveyPoints":
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return self.create_geometric_curve_set_representation()
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elif self.settings["context"].ContextIdentifier == "Lighting":
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return self.create_lighting_representation()
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def create_plan_representation(self):
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if self.settings["context"].ContextIdentifier == "Annotation":
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if isinstance(self.settings["geometry"], bpy.types.TextCurve):
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return self.create_text_representation()
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shape_representation = self.create_geometric_curve_set_representation(is_2d=True)
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shape_representation.RepresentationType = "Annotation2D"
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return shape_representation
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elif self.settings["context"].ContextIdentifier == "Axis":
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return self.create_curve2d_representation()
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elif self.settings["context"].ContextIdentifier == "Body":
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pass
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elif self.settings["context"].ContextIdentifier == "Box":
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pass
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elif self.settings["context"].ContextIdentifier == "Clearance":
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pass
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elif self.settings["context"].ContextIdentifier == "CoG":
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pass
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elif self.settings["context"].ContextIdentifier == "FootPrint":
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if self.settings["context"].TargetView in ["SKETCH_VIEW", "PLAN_VIEW", "REFLECTED_PLAN_VIEW"]:
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return self.create_geometric_curve_set_representation(is_2d=True)
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elif self.settings["context"].ContextIdentifier == "Reference":
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pass
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elif self.settings["context"].ContextIdentifier == "Profile":
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pass
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elif self.settings["context"].ContextIdentifier == "SurveyPoints":
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pass
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def create_lighting_representation(self):
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return self.file.createIfcShapeRepresentation(
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self.settings["context"],
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self.settings["context"].ContextIdentifier,
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"LightSource",
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[self.create_light_source()],
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)
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def create_light_source(self):
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if self.settings["geometry"].type == "POINT":
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return self.create_light_source_positional()
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def create_light_source_positional(self):
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return self.file.create_entity(
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"IfcLightSourcePositional",
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**{
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"LightColour": self.file.createIfcColourRgb(None, *self.settings["geometry"].color),
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"Position": self.file.createIfcCartesianPoint((0.0, 0.0, 0.0)),
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"Radius": self.convert_si_to_unit(self.settings["geometry"].shadow_soft_size),
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},
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)
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def create_text_representation(self):
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return self.file.createIfcShapeRepresentation(
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self.settings["context"],
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self.settings["context"].ContextIdentifier,
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"Annotation2D",
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[self.create_text()],
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)
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def create_text(self):
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text = self.settings["geometry"]
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if text.align_y in ["TOP_BASELINE", "BOTTOM_BASELINE", "BOTTOM"]:
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y = "bottom"
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elif text.align_y == "CENTER":
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y = "middle"
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elif text.align_y == "TOP":
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y = "top"
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if text.align_x == "LEFT":
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x = "left"
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elif text.align_x == "CENTER":
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x = "middle"
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elif text.align_x == "RIGHT":
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x = "right"
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origin = self.file.createIfcAxis2Placement3D(
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self.file.createIfcCartesianPoint((0.0, 0.0, 0.0)),
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self.file.createIfcDirection((0.0, 0.0, 1.0)),
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self.file.createIfcDirection((1.0, 0.0, 0.0)),
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)
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# TODO: Planar extent right now is wrong ...
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return self.file.createIfcTextLiteralWithExtent(
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text.body, origin, "RIGHT", self.file.createIfcPlanarExtent(1000, 1000), f"{y}-{x}"
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)
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def create_variable_representation(self):
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if isinstance(self.settings["geometry"], bpy.types.Curve):
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return self.create_curve3d_representation()
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elif isinstance(self.settings["geometry"], bpy.types.Camera):
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return self.create_camera_block_representation()
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elif not len(self.settings["geometry"].polygons):
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return self.create_curve3d_representation()
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elif self.settings["is_point_cloud"]:
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return self.create_point_cloud_representation()
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elif self.settings["ifc_representation_class"] == "IfcExtrudedAreaSolid/IfcRectangleProfileDef":
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return self.create_rectangle_extrusion_representation()
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elif self.settings["ifc_representation_class"] == "IfcExtrudedAreaSolid/IfcCircleProfileDef":
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return self.create_circle_extrusion_representation()
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elif self.settings["ifc_representation_class"] == "IfcExtrudedAreaSolid/IfcArbitraryClosedProfileDef":
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return self.create_arbitrary_extrusion_representation()
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elif self.settings["ifc_representation_class"] == "IfcExtrudedAreaSolid/IfcArbitraryProfileDefWithVoids":
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return self.create_arbitrary_void_extrusion_representation()
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elif self.settings["ifc_representation_class"] == "IfcExtrudedAreaSolid/IfcMaterialProfileSetUsage":
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return self.create_material_profile_set_extrusion_representation()
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return self.create_mesh_representation()
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def create_camera_block_representation(self):
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raster_x = self.settings["geometry"].BIMCameraProperties.raster_x
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raster_y = self.settings["geometry"].BIMCameraProperties.raster_y
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if self.is_camera_landscape():
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width = self.settings["geometry"].ortho_scale
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height = width / raster_x * raster_y
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else:
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height = self.settings["geometry"].ortho_scale
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width = height / raster_y * raster_x
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block = self.file.create_entity(
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"IfcBlock",
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**{
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"Position": self.file.createIfcAxis2Placement3D(
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self.create_cartesian_point(-width / 2, -height / 2, -self.settings["geometry"].clip_end)
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),
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"XLength": self.convert_si_to_unit(width),
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"YLength": self.convert_si_to_unit(height),
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"ZLength": self.convert_si_to_unit(self.settings["geometry"].clip_end),
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},
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)
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return self.file.createIfcShapeRepresentation(
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self.settings["context"],
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self.settings["context"].ContextIdentifier,
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"CSG",
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[self.file.createIfcCsgSolid(block)],
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)
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def is_camera_landscape(self):
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return (
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self.settings["geometry"].BIMCameraProperties.raster_x
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> self.settings["geometry"].BIMCameraProperties.raster_y
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)
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def create_curve3d_representation(self):
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return self.file.createIfcShapeRepresentation(
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self.settings["context"],
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self.settings["context"].ContextIdentifier,
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"Curve3D",
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self.create_curves(),
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)
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def create_curve2d_representation(self):
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return self.file.createIfcShapeRepresentation(
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self.settings["context"],
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self.settings["context"].ContextIdentifier,
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"Curve2D",
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self.create_curves(is_2d=True),
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)
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def create_curves(self, is_2d=False):
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if isinstance(self.settings["geometry"], bpy.types.Mesh):
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if self.file.schema == "IFC2X3":
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return self.create_curves_from_mesh_ifc2x3(is_2d=is_2d)
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else:
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return self.create_curves_from_mesh(is_2d=is_2d)
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elif isinstance(self.settings["geometry"], bpy.types.Curve):
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return self.create_curves_from_curve(is_2d=is_2d)
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def create_curves_from_mesh(self, is_2d=False):
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curves = []
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points = self.create_cartesian_point_list_from_vertices(self.settings["geometry"].vertices, is_2d=is_2d)
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edge_loops = []
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previous_edge = None
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edge_loop = []
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for edge in self.settings["geometry"].edges:
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if (Vector(points.CoordList[edge.vertices[0]]) - Vector(points.CoordList[edge.vertices[1]])).length < 0.001:
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# Maybe we should warn the user to weld vertices in this scenario?
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continue
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elif previous_edge is None:
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edge_loop = [self.file.createIfcLineIndex((edge.vertices[0] + 1, edge.vertices[1] + 1))]
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elif edge.vertices[0] == previous_edge.vertices[1]:
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edge_loop.append(self.file.createIfcLineIndex((edge.vertices[0] + 1, edge.vertices[1] + 1)))
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else:
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edge_loops.append(edge_loop)
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edge_loop = [self.file.createIfcLineIndex((edge.vertices[0] + 1, edge.vertices[1] + 1))]
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previous_edge = edge
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edge_loops.append(edge_loop)
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for edge_loop in edge_loops:
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curves.append(self.file.createIfcIndexedPolyCurve(points, edge_loop))
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return curves
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def create_curves_from_mesh_ifc2x3(self, is_2d=False):
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curves = []
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points = [
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self.create_cartesian_point(v.co.x, v.co.y, v.co.z if not is_2d else None)
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for v in self.settings["geometry"].vertices
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]
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coord_list = [p.Coordinates for p in points]
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edge_loops = []
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previous_edge = None
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edge_loop = []
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for edge in self.settings["geometry"].edges:
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if (Vector(coord_list[edge.vertices[0]]) - Vector(coord_list[edge.vertices[1]])).length < 0.001:
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# Maybe we should warn the user to weld vertices in this scenario?
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continue
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elif previous_edge is None:
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edge_loop = [edge.vertices]
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elif edge.vertices[0] == previous_edge.vertices[1]:
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edge_loop.append(edge.vertices)
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else:
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edge_loops.append(edge_loop)
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edge_loop = [edge.vertices]
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previous_edge = edge
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edge_loops.append(edge_loop)
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for edge_loop in edge_loops:
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loop_points = [points[p[0]] for p in edge_loop]
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loop_points.append(points[edge_loop[-1][1]])
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curves.append(self.file.createIfcPolyline(loop_points))
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return curves
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def create_curves_from_curve(self, is_2d=False):
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results = []
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for spline in self.settings["geometry"].splines:
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# TODO: support interpolated curves, not just polylines
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points = []
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for point in spline.bezier_points:
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if is_2d:
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points.append(self.create_cartesian_point(point.co.x, point.co.y))
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else:
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points.append(self.create_cartesian_point(point.co.x, point.co.y, point.co.z))
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for point in spline.points:
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if is_2d:
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points.append(self.create_cartesian_point(point.co.x, point.co.y))
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else:
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points.append(self.create_cartesian_point(point.co.x, point.co.y, point.co.z))
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if spline.use_cyclic_u:
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points.append(points[0])
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results.append(self.file.createIfcPolyline(points))
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return results
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def create_rectangle_extrusion_representation(self):
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helper = Helper(self.file)
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indices = helper.auto_detect_rectangle_profile_extruded_area_solid(self.settings["geometry"])
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profile_def = helper.create_rectangle_profile_def(self.settings["geometry"], indices["profile"])
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item = helper.create_extruded_area_solid(self.settings["geometry"], indices["extrusion"], profile_def)
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return self.file.createIfcShapeRepresentation(
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self.settings["context"],
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self.settings["context"].ContextIdentifier,
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"SweptSolid",
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[item],
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)
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def create_circle_extrusion_representation(self):
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helper = Helper(self.file)
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indices = helper.auto_detect_circle_profile_extruded_area_solid(self.settings["geometry"])
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profile_def = helper.create_circle_profile_def(self.settings["geometry"], indices["profile"])
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item = helper.create_extruded_area_solid(self.settings["geometry"], indices["extrusion"], profile_def)
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return self.file.createIfcShapeRepresentation(
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self.settings["context"],
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self.settings["context"].ContextIdentifier,
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"SweptSolid",
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[item],
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)
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def create_arbitrary_extrusion_representation(self):
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helper = Helper(self.file)
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indices = helper.auto_detect_arbitrary_closed_profile_extruded_area_solid(self.settings["geometry"])
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profile_def = helper.create_arbitrary_closed_profile_def(self.settings["geometry"], indices["profile"])
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item = helper.create_extruded_area_solid(self.settings["geometry"], indices["extrusion"], profile_def)
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return self.file.createIfcShapeRepresentation(
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self.settings["context"],
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self.settings["context"].ContextIdentifier,
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"SweptSolid",
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[item],
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)
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def create_arbitrary_void_extrusion_representation(self):
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helper = Helper(self.file)
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indices = helper.auto_detect_arbitrary_profile_with_voids_extruded_area_solid(self.settings["geometry"])
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if not indices["inner_curves"]:
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return self.create_arbitrary_extrusion_representation()
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profile_def = helper.create_arbitrary_profile_def_with_voids(
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self.settings["geometry"], indices["profile"], indices["inner_curves"]
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)
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item = helper.create_extruded_area_solid(self.settings["geometry"], indices["extrusion"], profile_def)
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return self.file.createIfcShapeRepresentation(
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self.settings["context"],
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self.settings["context"].ContextIdentifier,
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"SweptSolid",
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[item],
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)
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def create_material_profile_set_extrusion_representation(self):
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profile_set = self.settings["profile_set_usage"].ForProfileSet
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profile_def = profile_set.CompositeProfile or profile_set.MaterialProfiles[0].Profile
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position = None
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if self.file.schema == "IFC2X3":
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position = self.file.createIfcAxis2Placement3D(
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self.file.createIfcCartesianPoint((0.0, 0.0, 0.0)),
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self.file.createIfcDirection((0.0, 0.0, 1.0)),
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self.file.createIfcDirection((1.0, 0.0, 0.0)),
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)
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item = self.file.createIfcExtrudedAreaSolid(
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profile_def,
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position,
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self.file.createIfcDirection((0.0, 0.0, 1.0)),
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self.convert_si_to_unit(self.settings["blender_object"].dimensions[2]),
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)
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return self.file.createIfcShapeRepresentation(
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self.settings["context"],
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self.settings["context"].ContextIdentifier,
|
|
"SweptSolid",
|
|
[item],
|
|
)
|
|
|
|
def create_mesh_representation(self):
|
|
if self.file.schema == "IFC2X3" or self.settings["should_force_faceted_brep"]:
|
|
return self.create_faceted_brep()
|
|
return self.create_polygonal_face_set()
|
|
|
|
def create_faceted_brep(self):
|
|
self.create_vertices()
|
|
ifc_raw_items = [None] * self.settings["total_items"]
|
|
for i, value in enumerate(ifc_raw_items):
|
|
ifc_raw_items[i] = []
|
|
for polygon in self.settings["geometry"].polygons:
|
|
ifc_raw_items[polygon.material_index % self.settings["total_items"]].append(
|
|
self.file.createIfcFace(
|
|
[
|
|
self.file.createIfcFaceOuterBound(
|
|
self.file.createIfcPolyLoop([self.ifc_vertices[vertice] for vertice in polygon.vertices]),
|
|
True,
|
|
)
|
|
]
|
|
)
|
|
)
|
|
# TODO: May not actually be a closed shell, but who checks anyway?
|
|
items = [self.file.createIfcFacetedBrep(self.file.createIfcClosedShell(i)) for i in ifc_raw_items if i]
|
|
return self.file.createIfcShapeRepresentation(
|
|
self.settings["context"],
|
|
self.settings["context"].ContextIdentifier,
|
|
"Brep",
|
|
items,
|
|
)
|
|
|
|
def create_polygonal_face_set(self):
|
|
ifc_raw_items = [None] * self.settings["total_items"]
|
|
for i, value in enumerate(ifc_raw_items):
|
|
ifc_raw_items[i] = []
|
|
for polygon in self.settings["geometry"].polygons:
|
|
ifc_raw_items[polygon.material_index % self.settings["total_items"]].append(
|
|
self.file.createIfcIndexedPolygonalFace([v + 1 for v in polygon.vertices])
|
|
)
|
|
coordinates = self.file.createIfcCartesianPointList3D(
|
|
[self.convert_si_to_unit(v.co) for v in self.settings["geometry"].vertices]
|
|
)
|
|
items = [self.file.createIfcPolygonalFaceSet(coordinates, None, i) for i in ifc_raw_items if i]
|
|
return self.file.createIfcShapeRepresentation(
|
|
self.settings["context"],
|
|
self.settings["context"].ContextIdentifier,
|
|
"Tessellation",
|
|
items,
|
|
)
|
|
|
|
def create_vertices(self, is_2d=False):
|
|
if is_2d:
|
|
for v in self.settings["geometry"].vertices:
|
|
co = self.convert_si_to_unit(v.co)
|
|
self.ifc_vertices.append(self.file.createIfcCartesianPoint((co[0], co[1])))
|
|
return
|
|
self.ifc_vertices.extend(
|
|
[
|
|
self.file.createIfcCartesianPoint(self.convert_si_to_unit(v.co))
|
|
for v in self.settings["geometry"].vertices
|
|
]
|
|
)
|
|
|
|
def create_cartesian_point(self, x, y, z=None):
|
|
x = self.convert_si_to_unit(x)
|
|
y = self.convert_si_to_unit(y)
|
|
if z is None:
|
|
return self.file.createIfcCartesianPoint((x, y))
|
|
z = self.convert_si_to_unit(z)
|
|
return self.file.createIfcCartesianPoint((x, y, z))
|
|
|
|
def create_cartesian_point_list_from_vertices(self, vertices, is_2d=False):
|
|
if is_2d:
|
|
return self.file.createIfcCartesianPointList2D([self.convert_si_to_unit(v.co.xy) for v in vertices])
|
|
return self.file.createIfcCartesianPointList3D([self.convert_si_to_unit(v.co) for v in vertices])
|
|
|
|
def convert_si_to_unit(self, co):
|
|
if self.settings["coordinate_offset"]:
|
|
return (co / self.settings["unit_scale"]) + self.settings["coordinate_offset"]
|
|
return co / self.settings["unit_scale"]
|
|
|
|
def create_geometric_curve_set_representation(self, is_2d=False):
|
|
geometric_curve_set = self.file.createIfcGeometricCurveSet(self.create_curves(is_2d=is_2d))
|
|
return self.file.createIfcShapeRepresentation(
|
|
self.settings["context"],
|
|
self.settings["context"].ContextIdentifier,
|
|
"GeometricCurveSet",
|
|
[geometric_curve_set],
|
|
)
|
|
|
|
def create_box_representation(self):
|
|
obj = self.settings["blender_object"]
|
|
bounding_box = self.file.createIfcBoundingBox(
|
|
self.create_cartesian_point(obj.bound_box[0][0], obj.bound_box[0][1], obj.bound_box[0][2]),
|
|
self.convert_si_to_unit(obj.dimensions[0]),
|
|
self.convert_si_to_unit(obj.dimensions[1]),
|
|
self.convert_si_to_unit(obj.dimensions[2]),
|
|
)
|
|
return self.file.createIfcShapeRepresentation(
|
|
self.settings["context"],
|
|
self.settings["context"].ContextIdentifier,
|
|
"BoundingBox",
|
|
[bounding_box],
|
|
)
|
|
|
|
def create_structural_reference_representation(self):
|
|
if len(self.settings["geometry"].vertices) == 1:
|
|
return self.file.createIfcTopologyRepresentation(
|
|
self.settings["context"],
|
|
self.settings["context"].ContextIdentifier,
|
|
"Vertex",
|
|
[self.create_vertex_point(self.settings["geometry"].vertices[0].co)],
|
|
)
|
|
return self.file.createIfcTopologyRepresentation(
|
|
self.settings["context"],
|
|
self.settings["context"].ContextIdentifier,
|
|
"Edge",
|
|
[self.create_edge()],
|
|
)
|
|
|
|
def create_vertex_point(self, point):
|
|
return self.file.createIfcVertexPoint(self.create_cartesian_point(point.x, point.y, point.z))
|
|
|
|
def create_edge(self):
|
|
if hasattr(self.settings["geometry"], "splines"):
|
|
points = self.get_spline_points(self.settings["geometry"].splines[0])
|
|
else:
|
|
points = self.settings["geometry"].vertices
|
|
if not points:
|
|
return
|
|
return self.file.createIfcEdge(self.create_vertex_point(points[0].co), self.create_vertex_point(points[1].co))
|