390 lines
12 KiB
C
390 lines
12 KiB
C
/*
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* $Id$
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*
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* ***** BEGIN GPL/BL DUAL LICENSE BLOCK *****
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License
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* as published by the Free Software Foundation; either version 2
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* of the License, or (at your option) any later version. The Blender
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* Foundation also sells licenses for use in proprietary software under
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* the Blender License. See http://www.blender.org/BL/ for information
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* about this.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software Foundation,
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* Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
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*
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* The Original Code is Copyright (C) 2001-2002 by NaN Holding BV.
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* All rights reserved.
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*
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* This is a new part of Blender.
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*
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* Contributor(s): Joseph Gilbert, Campbell Barton
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*
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* ***** END GPL/BL DUAL LICENSE BLOCK *****
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*/
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#include "Geometry.h"
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/* - Not needed for now though other geometry functions will probably need them
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#include "BLI_arithb.h"
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#include "BKE_utildefines.h"
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*/
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/* Used for PolyFill */
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#include "BKE_displist.h"
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#include "MEM_guardedalloc.h"
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#include "BLI_blenlib.h"
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/* needed for EXPP_ReturnPyObjError and EXPP_check_sequence_consistency */
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#include "gen_utils.h"
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#include "BKE_utildefines.h"
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#include "BLI_boxpack2d.h"
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#define SWAP_FLOAT(a,b,tmp) tmp=a; a=b; b=tmp
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#define eul 0.000001
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/*-- forward declarations -- */
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static PyObject *M_Geometry_PolyFill( PyObject * self, PyObject * polyLineSeq );
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static PyObject *M_Geometry_LineIntersect2D( PyObject * self, PyObject * args );
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static PyObject *M_Geometry_PointInTriangle2D( PyObject * self, PyObject * args );
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static PyObject *M_Geometry_BoxPack2D( PyObject * self, PyObject * args );
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/*-------------------------DOC STRINGS ---------------------------*/
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static char M_Geometry_doc[] = "The Blender Geometry module\n\n";
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static char M_Geometry_PolyFill_doc[] = "(veclist_list) - takes a list of polylines (each point a vector) and returns the point indicies for a polyline filled with triangles";
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static char M_Geometry_LineIntersect2D_doc[] = "(lineA_p1, lineA_p2, lineB_p1, lineB_p2) - takes 2 lines (as 4 vectors) and returns a vector for their point of intersection or None";
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static char M_Geometry_PointInTriangle2D_doc[] = "(pt, tri_p1, tri_p2, tri_p3) - takes 4 vectors, one is the point and the next 3 define the triabgle, only the x and y are used from the vectors";
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static char M_Geometry_BoxPack2D_doc[] = "";
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/*-----------------------METHOD DEFINITIONS ----------------------*/
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struct PyMethodDef M_Geometry_methods[] = {
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{"PolyFill", ( PyCFunction ) M_Geometry_PolyFill, METH_O, M_Geometry_PolyFill_doc},
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{"LineIntersect2D", ( PyCFunction ) M_Geometry_LineIntersect2D, METH_VARARGS, M_Geometry_LineIntersect2D_doc},
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{"PointInTriangle2D", ( PyCFunction ) M_Geometry_PointInTriangle2D, METH_VARARGS, M_Geometry_PointInTriangle2D_doc},
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{"BoxPack2D", ( PyCFunction ) M_Geometry_BoxPack2D, METH_O, M_Geometry_BoxPack2D_doc},
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{NULL, NULL, 0, NULL}
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};
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/*----------------------------MODULE INIT-------------------------*/
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PyObject *Geometry_Init(void)
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{
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PyObject *submodule;
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submodule = Py_InitModule3("Blender.Geometry",
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M_Geometry_methods, M_Geometry_doc);
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return (submodule);
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}
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/*----------------------------------Geometry.PolyFill() -------------------*/
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/* PolyFill function, uses Blenders scanfill to fill multiple poly lines */
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static PyObject *M_Geometry_PolyFill( PyObject * self, PyObject * polyLineSeq )
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{
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PyObject *tri_list; /*return this list of tri's */
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PyObject *polyLine, *polyVec;
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int i, len_polylines, len_polypoints;
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/* display listbase */
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ListBase dispbase={NULL, NULL};
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DispList *dl;
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float *fp; /*pointer to the array of malloced dl->verts to set the points from the vectors */
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int index, *dl_face, totpoints=0;
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dispbase.first= dispbase.last= NULL;
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if(!PySequence_Check(polyLineSeq)) {
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return EXPP_ReturnPyObjError( PyExc_TypeError,
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"expected a sequence of poly lines" );
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}
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len_polylines = PySequence_Size( polyLineSeq );
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for( i = 0; i < len_polylines; ++i ) {
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polyLine= PySequence_GetItem( polyLineSeq, i );
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if (!PySequence_Check(polyLine)) {
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freedisplist(&dispbase);
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Py_XDECREF(polyLine); /* may be null so use Py_XDECREF*/
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return EXPP_ReturnPyObjError( PyExc_TypeError,
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"One or more of the polylines is not a sequence of Mathutils.Vector's" );
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}
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len_polypoints= PySequence_Size( polyLine );
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if (len_polypoints>0) { /* dont bother adding edges as polylines */
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if (EXPP_check_sequence_consistency( polyLine, &vector_Type ) != 1) {
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freedisplist(&dispbase);
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Py_DECREF(polyLine);
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return EXPP_ReturnPyObjError( PyExc_TypeError,
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"A point in one of the polylines is not a Mathutils.Vector type" );
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}
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dl= MEM_callocN(sizeof(DispList), "poly disp");
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BLI_addtail(&dispbase, dl);
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dl->type= DL_INDEX3;
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dl->nr= len_polypoints;
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dl->type= DL_POLY;
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dl->parts= 1; /* no faces, 1 edge loop */
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dl->col= 0; /* no material */
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dl->verts= fp= MEM_callocN( sizeof(float)*3*len_polypoints, "dl verts");
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dl->index= MEM_callocN(sizeof(int)*3*len_polypoints, "dl index");
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for( index = 0; index<len_polypoints; ++index, fp+=3) {
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polyVec= PySequence_GetItem( polyLine, index );
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fp[0] = ((VectorObject *)polyVec)->vec[0];
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fp[1] = ((VectorObject *)polyVec)->vec[1];
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if( ((VectorObject *)polyVec)->size > 2 )
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fp[2] = ((VectorObject *)polyVec)->vec[2];
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else
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fp[2]= 0.0f; /* if its a 2d vector then set the z to be zero */
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totpoints++;
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Py_DECREF(polyVec);
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}
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}
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Py_DECREF(polyLine);
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}
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if (totpoints) {
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/* now make the list to return */
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filldisplist(&dispbase, &dispbase);
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/* The faces are stored in a new DisplayList
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thats added to the head of the listbase */
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dl= dispbase.first;
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tri_list= PyList_New(dl->parts);
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if( !tri_list ) {
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freedisplist(&dispbase);
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return EXPP_ReturnPyObjError( PyExc_RuntimeError,
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"Geometry.PolyFill failed to make a new list" );
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}
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index= 0;
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dl_face= dl->index;
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while(index < dl->parts) {
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PyList_SetItem(tri_list, index, Py_BuildValue("iii", dl_face[0], dl_face[1], dl_face[2]) );
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dl_face+= 3;
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index++;
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}
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freedisplist(&dispbase);
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} else {
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/* no points, do this so scripts dont barf */
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tri_list= PyList_New(0);
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}
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return tri_list;
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}
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static PyObject *M_Geometry_LineIntersect2D( PyObject * self, PyObject * args )
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{
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VectorObject *line_a1, *line_a2, *line_b1, *line_b2;
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float a1x, a1y, a2x, a2y, b1x, b1y, b2x, b2y, xi, yi, a1,a2,b1,b2, newvec[2];
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if( !PyArg_ParseTuple ( args, "O!O!O!O!",
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&vector_Type, &line_a1,
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&vector_Type, &line_a2,
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&vector_Type, &line_b1,
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&vector_Type, &line_b2)
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)
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return ( EXPP_ReturnPyObjError
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( PyExc_TypeError, "expected 4 vector types\n" ) );
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a1x= line_a1->vec[0];
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a1y= line_a1->vec[1];
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a2x= line_a2->vec[0];
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a2y= line_a2->vec[1];
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b1x= line_b1->vec[0];
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b1y= line_b1->vec[1];
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b2x= line_b2->vec[0];
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b2y= line_b2->vec[1];
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if((MIN2(a1x, a2x) > MAX2(b1x, b2x)) ||
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(MAX2(a1x, a2x) < MIN2(b1x, b2x)) ||
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(MIN2(a1y, a2y) > MAX2(b1y, b2y)) ||
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(MAX2(a1y, a2y) < MIN2(b1y, b2y)) ) {
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Py_RETURN_NONE;
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}
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/* Make sure the hoz/vert line comes first. */
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if (fabs(b1x - b2x) < eul || fabs(b1y - b2y) < eul) {
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SWAP_FLOAT(a1x, b1x, xi); /*abuse xi*/
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SWAP_FLOAT(a1y, b1y, xi);
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SWAP_FLOAT(a2x, b2x, xi);
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SWAP_FLOAT(a2y, b2y, xi);
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}
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if (fabs(a1x-a2x) < eul) { /* verticle line */
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if (fabs(b1x-b2x) < eul){ /*verticle second line */
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Py_RETURN_NONE; /* 2 verticle lines dont intersect. */
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}
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else if (fabs(b1y-b2y) < eul) {
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/*X of vert, Y of hoz. no calculation needed */
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newvec[0]= a1x;
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newvec[1]= b1y;
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return newVectorObject(newvec, 2, Py_NEW);
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}
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yi = (float)(((b1y / fabs(b1x - b2x)) * fabs(b2x - a1x)) + ((b2y / fabs(b1x - b2x)) * fabs(b1x - a1x)));
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if (yi > MAX2(a1y, a2y)) {/* New point above seg1's vert line */
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Py_RETURN_NONE;
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} else if (yi < MIN2(a1y, a2y)) { /* New point below seg1's vert line */
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Py_RETURN_NONE;
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}
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newvec[0]= a1x;
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newvec[1]= yi;
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return newVectorObject(newvec, 2, Py_NEW);
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} else if (fabs(a2y-a1y) < eul) { /* hoz line1 */
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if (fabs(b2y-b1y) < eul) { /*hoz line2*/
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Py_RETURN_NONE; /*2 hoz lines dont intersect*/
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}
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/* Can skip vert line check for seg 2 since its covered above. */
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xi = (float)(((b1x / fabs(b1y - b2y)) * fabs(b2y - a1y)) + ((b2x / fabs(b1y - b2y)) * fabs(b1y - a1y)));
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if (xi > MAX2(a1x, a2x)) { /* New point right of hoz line1's */
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Py_RETURN_NONE;
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} else if (xi < MIN2(a1x, a2x)) { /*New point left of seg1's hoz line */
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Py_RETURN_NONE;
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}
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newvec[0]= xi;
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newvec[1]= a1y;
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return newVectorObject(newvec, 2, Py_NEW);
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}
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b1 = (a2y-a1y)/(a2x-a1x);
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b2 = (b2y-b1y)/(b2x-b1x);
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a1 = a1y-b1*a1x;
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a2 = b1y-b2*b1x;
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if (b1 - b2 == 0.0) {
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Py_RETURN_NONE;
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}
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xi = - (a1-a2)/(b1-b2);
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yi = a1+b1*xi;
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if ((a1x-xi)*(xi-a2x) >= 0 && (b1x-xi)*(xi-b2x) >= 0 && (a1y-yi)*(yi-a2y) >= 0 && (b1y-yi)*(yi-b2y)>=0) {
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newvec[0]= xi;
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newvec[1]= yi;
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return newVectorObject(newvec, 2, Py_NEW);
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}
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Py_RETURN_NONE;
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}
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#define SIDE_OF_LINE(pa,pb,pp) ((pa[0]-pp[0])*(pb[1]-pp[1]))-((pb[0]-pp[0])*(pa[1]-pp[1]))
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#define POINT_IN_TRI(p0,p1,p2,p3) ((SIDE_OF_LINE(p1,p2,p0)>=0) && (SIDE_OF_LINE(p2,p3,p0)>=0) && (SIDE_OF_LINE(p3,p1,p0)>=0))
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static PyObject *M_Geometry_PointInTriangle2D( PyObject * self, PyObject * args )
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{
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VectorObject *pt_vec, *tri_p1, *tri_p2, *tri_p3;
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if( !PyArg_ParseTuple ( args, "O!O!O!O!",
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&vector_Type, &pt_vec,
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&vector_Type, &tri_p1,
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&vector_Type, &tri_p2,
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&vector_Type, &tri_p3)
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)
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return ( EXPP_ReturnPyObjError
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( PyExc_TypeError, "expected 4 vector types\n" ) );
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if POINT_IN_TRI(pt_vec->vec, tri_p1->vec, tri_p2->vec, tri_p3->vec)
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Py_RETURN_TRUE;
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else
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Py_RETURN_FALSE;
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}
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int boxPack_FromPyObject(PyObject * value, boxPack **boxarray )
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{
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int len, i;
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PyObject *list_item, *item_1, *item_2;
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boxPack *box;
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/* Error checking must alredy be done */
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if( !PyList_Check( value ) )
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return EXPP_ReturnIntError( PyExc_TypeError,
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"can only back a list of [x,y,x,w]" );
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len = PyList_Size( value );
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(*boxarray) = MEM_mallocN( len*sizeof(boxPack), "boxPack box");
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for( i = 0; i < len; i++ ) {
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list_item = PyList_GET_ITEM( value, i );
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if( !PyList_Check( list_item ) || PyList_Size( list_item ) < 4 ) {
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MEM_freeN(*boxarray);
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return EXPP_ReturnIntError( PyExc_TypeError,
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"can only back a list of [x,y,x,w]" );
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}
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box = (*boxarray)+i;
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item_1 = PyList_GET_ITEM(list_item, 2);
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item_2 = PyList_GET_ITEM(list_item, 3);
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if (!PyNumber_Check(item_1) || !PyNumber_Check(item_2)) {
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MEM_freeN(*boxarray);
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return EXPP_ReturnIntError( PyExc_TypeError,
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"can only back a list of 2d boxes [x,y,x,w]" );
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}
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box->w = (float)PyFloat_AsDouble( item_1 );
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box->h = (float)PyFloat_AsDouble( item_2 );
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box->index = i;
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/* verts will be added later */
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}
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return 0;
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}
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void boxPack_ToPyObject(PyObject * value, boxPack **boxarray)
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{
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int len, i;
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PyObject *list_item;
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boxPack *box;
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len = PyList_Size( value );
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for( i = 0; i < len; i++ ) {
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box = (*boxarray)+i;
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list_item = PyList_GET_ITEM( value, box->index );
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PyList_SET_ITEM( list_item, 0, PyFloat_FromDouble( box->x ));
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PyList_SET_ITEM( list_item, 1, PyFloat_FromDouble( box->y ));
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}
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MEM_freeN(*boxarray);
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}
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static PyObject *M_Geometry_BoxPack2D( PyObject * self, PyObject * boxlist )
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{
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boxPack *boxarray;
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float tot_width, tot_height;
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int len;
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int error;
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if(!PyList_Check(boxlist))
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return EXPP_ReturnPyObjError( PyExc_TypeError,
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"expected a sequence of boxes [[x,y,w,h], ... ]" );
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len = PyList_Size( boxlist );
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if (!len)
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return Py_BuildValue( "ff", 0.0, 0.0);
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error = boxPack_FromPyObject(boxlist, &boxarray);
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if (error!=0) return NULL;
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/* Non Python function */
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boxPack2D(boxarray, len, &tot_width, &tot_height);
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boxPack_ToPyObject(boxlist, &boxarray);
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return Py_BuildValue( "ff", tot_width, tot_height);
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}
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