# IfcOpenShell - IFC toolkit and geometry engine # Copyright (C) 2022 Dion Moult # # This file is part of IfcOpenShell. # # IfcOpenShell is free software: you can redistribute it and/or modify # it under the terms of the GNU Lesser General Public License as published by # the Free Software Foundation, either version 3 of the License, or # (at your option) any later version. # # IfcOpenShell is distributed in the hope that it will be useful, # but WITHOUT ANY WARRANTY; without even the implied warranty of # MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the # GNU Lesser General Public License for more details. # # You should have received a copy of the GNU Lesser General Public License # along with IfcOpenShell. If not, see . import ifcopenshell.util.unit from ifcopenshell.util.data import Clipping from math import sin, cos from mathutils import Vector from typing import Any, Optional, Union def add_slab_representation( file, # IfcGeometricRepresentationContext context: ifcopenshell.entity_instance, # in meters depth: float = 0.2, # in radians x_angle: float = 0.0, # A list of planes that define clipping half space solids # Planes are defined either by Clipping objects # or by dictionaries of arguments for `Clipping.parse` clippings: Optional[list[Union[Clipping, dict[str, Any]]]] = None, polyline: Optional[list[Vector]] = None, ) -> ifcopenshell.entity_instance: usecase = Usecase() usecase.file = file usecase.settings = { "context": context, "depth": depth, "x_angle": x_angle, "clippings": clippings if clippings is not None else [], "polyline": polyline, } return usecase.execute() class Usecase: def execute(self): self.settings["unit_scale"] = ifcopenshell.util.unit.calculate_unit_scale(self.file) return self.file.createIfcShapeRepresentation( self.settings["context"], self.settings["context"].ContextIdentifier, "Clipping" if self.settings["clippings"] else "SweptSolid", [self.create_item()], ) def create_item(self): size = self.convert_si_to_unit(1) points = ((0.0, 0.0), (size, 0.0), (size, size), (0.0, size), (0.0, 0.0)) if self.settings["polyline"]: points = [(self.convert_si_to_unit(p[0]), self.convert_si_to_unit(p[1])) for p in self.settings["polyline"]] if self.file.schema == "IFC2X3": curve = self.file.createIfcPolyline([self.file.createIfcCartesianPoint(p) for p in points]) else: curve = self.file.createIfcIndexedPolyCurve(self.file.createIfcCartesianPointList2D(points)) if self.settings["x_angle"]: extrusion_direction = self.file.createIfcDirection( (0.0, sin(self.settings["x_angle"]), cos(self.settings["x_angle"])) ) else: extrusion_direction = self.file.createIfcDirection((0.0, 0.0, 1.0)) position = None # default position for IFC2X3 where .Position is not optional if self.file.schema == "IFC2X3": position = self.file.createIfcAxis2Placement3D( self.file.createIfcCartesianPoint((0.0, 0.0, 0.0)), self.file.createIfcDirection((0.0, 0.0, 1.0)), self.file.createIfcDirection((1.0, 0.0, 0.0)), ) extrusion = self.file.createIfcExtrudedAreaSolid( self.file.createIfcArbitraryClosedProfileDef("AREA", None, curve), position, extrusion_direction, self.convert_si_to_unit(self.settings["depth"]) * 1 / cos(self.settings["x_angle"]), ) if self.settings["clippings"]: return self.apply_clippings(extrusion) return extrusion def apply_clippings(self, first_operand): while self.settings["clippings"]: clipping = self.settings["clippings"].pop() if isinstance(clipping, ifcopenshell.entity_instance): new = ifcopenshell.util.element.copy(self.file, clipping) new.FirstOperand = first_operand first_operand = new else: # Clipping first_operand = clipping.apply(self.file, first_operand, self.settings["unit_scale"]) return first_operand def convert_si_to_unit(self, co): return co / self.settings["unit_scale"]