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blender-archive/source/blender/modifiers/intern/MOD_boolean_util.c
Sergey Sharybin 9345d2d723 Fix T42767: Subsurfacing union boolean with same-named UVs crashes Blender
Was own mistake in handling custom data layers in boolean modifier.

Campbell, do you mind double-checking if it's all correct?
2014-12-02 17:50:34 +05:00

788 lines
23 KiB
C

/*
* ***** BEGIN GPL LICENSE BLOCK *****
*
* This program is free software; you can redistribute it and/or
* modify it under the terms of the GNU General Public License
* as published by the Free Software Foundation; either version 2
* of the License, or (at your option) any later version.
*
* This program 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 General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program; if not, write to the Free Software Foundation,
* Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301, USA.
*
* The Original Code is Copyright (C) Blender Foundation
* All rights reserved.
*
* Contributor(s): Sergey Sharybin.
*
* ***** END GPL LICENSE BLOCK *****
*/
/** \file blender/modifiers/intern/MOD_boolean_util.c
* \ingroup modifiers
*/
#include "MEM_guardedalloc.h"
#include "DNA_material_types.h"
#include "DNA_meshdata_types.h"
#include "DNA_object_types.h"
#include "BLI_utildefines.h"
#include "BLI_alloca.h"
#include "BLI_ghash.h"
#include "BLI_math.h"
#include "BKE_cdderivedmesh.h"
#include "BKE_material.h"
#include "MOD_boolean_util.h"
#include "carve-capi.h"
/* Adopted from BM_loop_interp_from_face(),
*
* Transform matrix is used in cases when target coordinate needs
* to be converted to source space (namely when interpolating
* boolean result loops from second operand).
*
* TODO(sergey): Consider making it a generic function in DerivedMesh.c.
*/
static void DM_loop_interp_from_poly(DerivedMesh *source_dm,
MVert *source_mverts,
MLoop *source_mloops,
MPoly *source_poly,
DerivedMesh *target_dm,
MVert *target_mverts,
MLoop *target_mloop,
float transform[4][4],
int target_loop_index)
{
float (*cos_3d)[3] = BLI_array_alloca(cos_3d, source_poly->totloop);
int *source_indices = BLI_array_alloca(source_indices, source_poly->totloop);
float *weights = BLI_array_alloca(weights, source_poly->totloop);
int i;
int target_vert_index = target_mloop[target_loop_index].v;
float coord[3];
for (i = 0; i < source_poly->totloop; ++i) {
MLoop *mloop = &source_mloops[source_poly->loopstart + i];
source_indices[i] = source_poly->loopstart + i;
copy_v3_v3(cos_3d[i], source_mverts[mloop->v].co);
}
if (transform) {
mul_v3_m4v3(coord, transform, target_mverts[target_vert_index].co);
}
else {
copy_v3_v3(coord, target_mverts[target_vert_index].co);
}
interp_weights_poly_v3(weights, cos_3d, source_poly->totloop, coord);
DM_interp_loop_data(source_dm, target_dm, source_indices, weights,
source_poly->totloop, target_loop_index);
}
typedef struct DMArrays {
MVert *mvert;
MEdge *medge;
MLoop *mloop;
MPoly *mpoly;
bool mvert_allocated;
bool medge_allocated;
bool mloop_allocated;
bool mpoly_allocated;
} DMArrays;
static void dm_arrays_get(DerivedMesh *dm, DMArrays *arrays)
{
arrays->mvert = DM_get_vert_array(dm, &arrays->mvert_allocated);
arrays->medge = DM_get_edge_array(dm, &arrays->medge_allocated);
arrays->mloop = DM_get_loop_array(dm, &arrays->mloop_allocated);
arrays->mpoly = DM_get_poly_array(dm, &arrays->mpoly_allocated);
}
static void dm_arrays_free(DMArrays *arrays)
{
if (arrays->mvert_allocated) {
MEM_freeN(arrays->mvert);
}
if (arrays->medge_allocated) {
MEM_freeN(arrays->medge);
}
if (arrays->mloop_allocated) {
MEM_freeN(arrays->mloop);
}
if (arrays->mpoly_allocated) {
MEM_freeN(arrays->mpoly);
}
}
/* **** Importer from derived mesh to Carve **** */
typedef struct ImportMeshData {
DerivedMesh *dm;
float obmat[4][4];
MVert *mvert;
MEdge *medge;
MLoop *mloop;
MPoly *mpoly;
} ImportMeshData;
/* Get number of vertices. */
static int importer_GetNumVerts(ImportMeshData *import_data)
{
DerivedMesh *dm = import_data->dm;
return dm->getNumVerts(dm);
}
/* Get number of edges. */
static int importer_GetNumEdges(ImportMeshData *import_data)
{
DerivedMesh *dm = import_data->dm;
return dm->getNumEdges(dm);
}
/* Get number of loops. */
static int importer_GetNumLoops(ImportMeshData *import_data)
{
DerivedMesh *dm = import_data->dm;
return dm->getNumLoops(dm);
}
/* Get number of polys. */
static int importer_GetNumPolys(ImportMeshData *import_data)
{
DerivedMesh *dm = import_data->dm;
return dm->getNumPolys(dm);
}
/* Get 3D coordinate of vertex with given index. */
static void importer_GetVertCoord(ImportMeshData *import_data, int vert_index, float coord[3])
{
MVert *mvert = import_data->mvert;
BLI_assert(vert_index >= 0 && vert_index < import_data->dm->getNumVerts(import_data->dm));
mul_v3_m4v3(coord, import_data->obmat, mvert[vert_index].co);
}
/* Get index of vertices which are adjucent to edge specified by it's index. */
static void importer_GetEdgeVerts(ImportMeshData *import_data, int edge_index, int *v1, int *v2)
{
MEdge *medge = &import_data->medge[edge_index];
BLI_assert(edge_index >= 0 && edge_index < import_data->dm->getNumEdges(import_data->dm));
*v1 = medge->v1;
*v2 = medge->v2;
}
/* Get number of adjucent vertices to the poly specified by it's index. */
static int importer_GetPolyNumVerts(ImportMeshData *import_data, int poly_index)
{
MPoly *mpoly = import_data->mpoly;
BLI_assert(poly_index >= 0 && poly_index < import_data->dm->getNumPolys(import_data->dm));
return mpoly[poly_index].totloop;
}
/* Get list of adjucent vertices to the poly specified by it's index. */
static void importer_GetPolyVerts(ImportMeshData *import_data, int poly_index, int *verts)
{
MPoly *mpoly = &import_data->mpoly[poly_index];
MLoop *mloop = import_data->mloop + mpoly->loopstart;
int i;
BLI_assert(poly_index >= 0 && poly_index < import_data->dm->getNumPolys(import_data->dm));
for (i = 0; i < mpoly->totloop; i++, mloop++) {
verts[i] = mloop->v;
}
}
// Triangulate 2D polygon.
#if 0
static int importer_triangulate2DPoly(ImportMeshData *UNUSED(import_data),
const float (*vertices)[2], int num_vertices,
unsigned int (*triangles)[3])
{
// TODO(sergey): Currently import_data is unused but in the future we could
// put memory arena there which will reduce amount of allocations happening
// over the triangulation period.
//
// However that's not so much straighforward to do it right now because we
// also are tu consider threaded import/export.
BLI_assert(num_vertices > 3);
BLI_polyfill_calc(vertices, num_vertices, triangles);
return num_vertices - 2;
}
#endif
static CarveMeshImporter MeshImporter = {
importer_GetNumVerts,
importer_GetNumEdges,
importer_GetNumLoops,
importer_GetNumPolys,
importer_GetVertCoord,
importer_GetEdgeVerts,
importer_GetPolyNumVerts,
importer_GetPolyVerts,
/* TODO(sergey): We don't use BLI_polyfill_calc() because it tends
* to generate degenerated geometry which is fatal for booleans.
*
* For now we stick to Carve's triangulation.
*/
NULL, /* importer_triangulate2DPoly */
};
/* **** Exporter from Carve to derived mesh **** */
typedef struct ExportMeshData {
DerivedMesh *dm;
float obimat[4][4];
MVert *mvert;
MEdge *medge;
MLoop *mloop;
MPoly *mpoly;
int *vert_origindex;
int *edge_origindex;
int *poly_origindex;
int *loop_origindex;
/* Objects and derived meshes of left and right operands.
* Used for custom data merge and interpolation.
*/
Object *ob_left;
Object *ob_right;
DerivedMesh *dm_left;
DerivedMesh *dm_right;
MVert *mvert_left;
MEdge *medge_left;
MLoop *mloop_left;
MPoly *mpoly_left;
MVert *mvert_right;
MEdge *medge_right;
MLoop *mloop_right;
MPoly *mpoly_right;
float left_to_right_mat[4][4];
/* Hash to map materials from right object to result. */
GHash *material_hash;
} ExportMeshData;
BLI_INLINE Object *which_object(ExportMeshData *export_data, int which_mesh)
{
Object *object = NULL;
switch (which_mesh) {
case CARVE_MESH_LEFT:
object = export_data->ob_left;
break;
case CARVE_MESH_RIGHT:
object = export_data->ob_right;
break;
}
return object;
}
BLI_INLINE DerivedMesh *which_dm(ExportMeshData *export_data, int which_mesh)
{
DerivedMesh *dm = NULL;
switch (which_mesh) {
case CARVE_MESH_LEFT:
dm = export_data->dm_left;
break;
case CARVE_MESH_RIGHT:
dm = export_data->dm_right;
break;
}
return dm;
}
BLI_INLINE MVert *which_mvert(ExportMeshData *export_data, int which_mesh)
{
MVert *mvert = NULL;
switch (which_mesh) {
case CARVE_MESH_LEFT:
mvert = export_data->mvert_left;
break;
case CARVE_MESH_RIGHT:
mvert = export_data->mvert_right;
break;
}
return mvert;
}
BLI_INLINE MEdge *which_medge(ExportMeshData *export_data, int which_mesh)
{
MEdge *medge = NULL;
switch (which_mesh) {
case CARVE_MESH_LEFT:
medge = export_data->medge_left;
break;
case CARVE_MESH_RIGHT:
medge = export_data->medge_right;
break;
}
return medge;
}
BLI_INLINE MLoop *which_mloop(ExportMeshData *export_data, int which_mesh)
{
MLoop *mloop = NULL;
switch (which_mesh) {
case CARVE_MESH_LEFT:
mloop = export_data->mloop_left;
break;
case CARVE_MESH_RIGHT:
mloop = export_data->mloop_right;
break;
}
return mloop;
}
BLI_INLINE MPoly *which_mpoly(ExportMeshData *export_data, int which_mesh)
{
MPoly *mpoly = NULL;
switch (which_mesh) {
case CARVE_MESH_LEFT:
mpoly = export_data->mpoly_left;
break;
case CARVE_MESH_RIGHT:
mpoly = export_data->mpoly_right;
break;
}
return mpoly;
}
/* Create new external mesh */
static void exporter_InitGeomArrays(ExportMeshData *export_data,
int num_verts, int num_edges,
int num_loops, int num_polys)
{
DerivedMesh *dm = CDDM_new(num_verts, num_edges, 0,
num_loops, num_polys);
DerivedMesh *dm_left = export_data->dm_left,
*dm_right = export_data->dm_right;
/* Mask for custom data layers to be merged from operands. */
CustomDataMask merge_mask = CD_MASK_DERIVEDMESH & ~CD_MASK_ORIGINDEX;
export_data->dm = dm;
export_data->mvert = dm->getVertArray(dm);
export_data->medge = dm->getEdgeArray(dm);
export_data->mloop = dm->getLoopArray(dm);
export_data->mpoly = dm->getPolyArray(dm);
/* Merge custom data layers from operands.
*
* Will only create custom data layers for all the layers which appears in
* the operand. Data for those layers will not be allocated or initialized.
*/
CustomData_merge(&dm_left->loopData, &dm->loopData, merge_mask, CD_DEFAULT, num_loops);
CustomData_merge(&dm_right->loopData, &dm->loopData, merge_mask, CD_DEFAULT, num_loops);
CustomData_merge(&dm_left->polyData, &dm->polyData, merge_mask, CD_DEFAULT, num_polys);
CustomData_merge(&dm_right->polyData, &dm->polyData, merge_mask, CD_DEFAULT, num_polys);
CustomData_merge(&dm_left->edgeData, &dm->edgeData, merge_mask, CD_DEFAULT, num_edges);
CustomData_merge(&dm_right->edgeData, &dm->edgeData, merge_mask, CD_DEFAULT, num_edges);
export_data->vert_origindex = dm->getVertDataArray(dm, CD_ORIGINDEX);
export_data->edge_origindex = dm->getEdgeDataArray(dm, CD_ORIGINDEX);
export_data->poly_origindex = dm->getPolyDataArray(dm, CD_ORIGINDEX);
export_data->loop_origindex = dm->getLoopDataArray(dm, CD_ORIGINDEX);
}
/* Set coordinate of vertex with given index. */
static void exporter_SetVert(ExportMeshData *export_data,
int vert_index, float coord[3],
int which_orig_mesh, int orig_vert_index)
{
DerivedMesh *dm = export_data->dm;
DerivedMesh *dm_orig;
MVert *mvert = export_data->mvert;
BLI_assert(vert_index >= 0 && vert_index <= dm->getNumVerts(dm));
dm_orig = which_dm(export_data, which_orig_mesh);
if (dm_orig) {
BLI_assert(orig_vert_index >= 0 && orig_vert_index < dm_orig->getNumVerts(dm_orig));
mvert[vert_index] = which_mvert(export_data, which_orig_mesh)[orig_vert_index];
CustomData_copy_data(&dm_orig->vertData, &dm->vertData, orig_vert_index, vert_index, 1);
}
/* Set original index of the vertex. */
if (export_data->vert_origindex) {
if (which_orig_mesh == CARVE_MESH_LEFT) {
export_data->vert_origindex[vert_index] = orig_vert_index;
}
else {
export_data->vert_origindex[vert_index] = ORIGINDEX_NONE;
}
}
mul_v3_m4v3(mvert[vert_index].co, export_data->obimat, coord);
}
/* Set vertices which are adjucent to the edge specified by it's index. */
static void exporter_SetEdge(ExportMeshData *export_data,
int edge_index, int v1, int v2,
int which_orig_mesh, int orig_edge_index)
{
DerivedMesh *dm = export_data->dm;
MEdge *medge = &export_data->medge[edge_index];
DerivedMesh *dm_orig;
BLI_assert(edge_index >= 0 && edge_index < dm->getNumEdges(dm));
BLI_assert(v1 >= 0 && v1 < dm->getNumVerts(dm));
BLI_assert(v2 >= 0 && v2 < dm->getNumVerts(dm));
dm_orig = which_dm(export_data, which_orig_mesh);
if (dm_orig) {
BLI_assert(orig_edge_index >= 0 && orig_edge_index < dm_orig->getNumEdges(dm_orig));
*medge = which_medge(export_data, which_orig_mesh)[orig_edge_index];
/* Copy all edge layers, including medge. */
CustomData_copy_data(&dm_orig->edgeData, &dm->edgeData, orig_edge_index, edge_index, 1);
}
/* Set original index of the edge. */
if (export_data->edge_origindex) {
if (which_orig_mesh == CARVE_MESH_LEFT) {
export_data->edge_origindex[edge_index] = orig_edge_index;
}
else {
export_data->edge_origindex[edge_index] = ORIGINDEX_NONE;
}
}
medge->v1 = v1;
medge->v2 = v2;
medge->flag |= ME_EDGEDRAW | ME_EDGERENDER;
}
static void setMPolyMaterial(ExportMeshData *export_data,
MPoly *mpoly,
int which_orig_mesh)
{
Object *orig_object;
GHash *material_hash;
Material *orig_mat;
if (which_orig_mesh == CARVE_MESH_LEFT) {
/* No need to change materian index for faces from left operand */
return;
}
material_hash = export_data->material_hash;
orig_object = which_object(export_data, which_orig_mesh);
/* Set material, based on lookup in hash table. */
orig_mat = give_current_material(orig_object, mpoly->mat_nr + 1);
if (orig_mat) {
/* For faces from right operand check if there's requested material
* in the left operand. And if it is, use index of that material,
* otherwise fallback to first material (material with index=0).
*/
if (!BLI_ghash_haskey(material_hash, orig_mat)) {
int a, mat_nr;
mat_nr = 0;
for (a = 0; a < export_data->ob_left->totcol; a++) {
if (give_current_material(export_data->ob_left, a + 1) == orig_mat) {
mat_nr = a;
break;
}
}
BLI_ghash_insert(material_hash, orig_mat, SET_INT_IN_POINTER(mat_nr));
mpoly->mat_nr = mat_nr;
}
else
mpoly->mat_nr = GET_INT_FROM_POINTER(BLI_ghash_lookup(material_hash, orig_mat));
}
else {
mpoly->mat_nr = 0;
}
}
/* Set list of adjucent loops to the poly specified by it's index. */
static void exporter_SetPoly(ExportMeshData *export_data,
int poly_index, int start_loop, int num_loops,
int which_orig_mesh, int orig_poly_index)
{
DerivedMesh *dm = export_data->dm;
MPoly *mpoly = &export_data->mpoly[poly_index];
DerivedMesh *dm_orig;
int i;
/* Poly is always to be either from left or right operand. */
dm_orig = which_dm(export_data, which_orig_mesh);
BLI_assert(poly_index >= 0 && poly_index < dm->getNumPolys(dm));
BLI_assert(start_loop >= 0 && start_loop <= dm->getNumLoops(dm) - num_loops);
BLI_assert(num_loops >= 3);
BLI_assert(dm_orig != NULL);
BLI_assert(orig_poly_index >= 0 && orig_poly_index < dm_orig->getNumPolys(dm_orig));
/* Copy all poly layers, including mpoly. */
*mpoly = which_mpoly(export_data, which_orig_mesh)[orig_poly_index];
CustomData_copy_data(&dm_orig->polyData, &dm->polyData, orig_poly_index, poly_index, 1);
/* Set material of the curren poly.
* This would re-map materials from right operand to materials from the
* left one as well.
*/
setMPolyMaterial(export_data, mpoly, which_orig_mesh);
/* Set original index of the poly. */
if (export_data->poly_origindex) {
if (which_orig_mesh == CARVE_MESH_LEFT) {
export_data->poly_origindex[poly_index] = orig_poly_index;
}
else {
export_data->poly_origindex[poly_index] = ORIGINDEX_NONE;
}
}
/* Set poly data itself. */
mpoly->loopstart = start_loop;
mpoly->totloop = num_loops;
/* Interpolate data for poly loops. */
{
MVert *source_mverts = which_mvert(export_data, which_orig_mesh);
MLoop *source_mloops = which_mloop(export_data, which_orig_mesh);
MPoly *source_mpolys = which_mpoly(export_data, which_orig_mesh);
MPoly *source_poly = &source_mpolys[orig_poly_index];
MVert *target_mverts = export_data->mvert;
MLoop *target_mloops = export_data->mloop;
float (*transform)[4] = NULL;
if (which_orig_mesh == CARVE_MESH_RIGHT) {
transform = export_data->left_to_right_mat;
}
for (i = 0; i < mpoly->totloop; i++) {
DM_loop_interp_from_poly(dm_orig,
source_mverts,
source_mloops,
source_poly,
dm,
target_mverts,
target_mloops,
transform,
i + mpoly->loopstart);
}
}
}
/* Set list vertex and edge which are adjucent to loop with given index. */
static void exporter_SetLoop(ExportMeshData *export_data,
int loop_index, int vertex, int edge,
int which_orig_mesh, int orig_loop_index)
{
DerivedMesh *dm = export_data->dm;
MLoop *mloop = &export_data->mloop[loop_index];
DerivedMesh *dm_orig;
BLI_assert(loop_index >= 0 && loop_index < dm->getNumLoops(dm));
BLI_assert(vertex >= 0 && vertex < dm->getNumVerts(dm));
BLI_assert(edge >= 0 && vertex < dm->getNumEdges(dm));
dm_orig = which_dm(export_data, which_orig_mesh);
if (dm_orig) {
BLI_assert(orig_loop_index >= 0 && orig_loop_index < dm_orig->getNumLoops(dm_orig));
/* Copy all loop layers, including mloop. */
*mloop = which_mloop(export_data, which_orig_mesh)[orig_loop_index];
CustomData_copy_data(&dm_orig->loopData, &dm->loopData, orig_loop_index, loop_index, 1);
}
/* Set original index of the loop. */
if (export_data->loop_origindex) {
if (which_orig_mesh == CARVE_MESH_LEFT) {
export_data->loop_origindex[loop_index] = orig_loop_index;
}
else {
export_data->loop_origindex[loop_index] = ORIGINDEX_NONE;
}
}
mloop->v = vertex;
mloop->e = edge;
}
/* Edge index from a loop index for a given original mesh. */
static int exporter_MapLoopToEdge(ExportMeshData *export_data,
int which_mesh, int loop_index)
{
DerivedMesh *dm = which_dm(export_data, which_mesh);
MLoop *mloop = which_mloop(export_data, which_mesh);
(void) dm; /* Unused in release builds. */
BLI_assert(dm != NULL);
BLI_assert(loop_index >= 0 && loop_index < dm->getNumLoops(dm));
return mloop[loop_index].e;
}
static CarveMeshExporter MeshExporter = {
exporter_InitGeomArrays,
exporter_SetVert,
exporter_SetEdge,
exporter_SetPoly,
exporter_SetLoop,
exporter_MapLoopToEdge
};
static int operation_from_optype(int int_op_type)
{
int operation;
switch (int_op_type) {
case 1:
operation = CARVE_OP_INTERSECTION;
break;
case 2:
operation = CARVE_OP_UNION;
break;
case 3:
operation = CARVE_OP_A_MINUS_B;
break;
default:
BLI_assert(!"Should not happen");
operation = -1;
break;
}
return operation;
}
static void prepare_import_data(Object *object,
DerivedMesh *dm,
const DMArrays *dm_arrays,
ImportMeshData *import_data)
{
import_data->dm = dm;
copy_m4_m4(import_data->obmat, object->obmat);
import_data->mvert = dm_arrays->mvert;
import_data->medge = dm_arrays->medge;
import_data->mloop = dm_arrays->mloop;
import_data->mpoly = dm_arrays->mpoly;
}
static struct CarveMeshDescr *carve_mesh_from_dm(Object *object,
DerivedMesh *dm,
const DMArrays *dm_arrays)
{
ImportMeshData import_data;
prepare_import_data(object, dm, dm_arrays, &import_data);
return carve_addMesh(&import_data, &MeshImporter);
}
static void prepare_export_data(Object *object_left, DerivedMesh *dm_left, const DMArrays *dm_left_arrays,
Object *object_right, DerivedMesh *dm_right, const DMArrays *dm_right_arrays,
ExportMeshData *export_data)
{
float object_right_imat[4][4];
invert_m4_m4(export_data->obimat, object_left->obmat);
export_data->ob_left = object_left;
export_data->ob_right = object_right;
export_data->dm_left = dm_left;
export_data->dm_right = dm_right;
export_data->mvert_left = dm_left_arrays->mvert;
export_data->medge_left = dm_left_arrays->medge;
export_data->mloop_left = dm_left_arrays->mloop;
export_data->mpoly_left = dm_left_arrays->mpoly;
export_data->mvert_right = dm_right_arrays->mvert;
export_data->medge_right = dm_right_arrays->medge;
export_data->mloop_right = dm_right_arrays->mloop;
export_data->mpoly_right = dm_right_arrays->mpoly;
export_data->material_hash = BLI_ghash_ptr_new("CSG_mat gh");
/* Matrix to convert coord from left object's loca; space to
* right object's local space.
*/
invert_m4_m4(object_right_imat, object_right->obmat);
mul_m4_m4m4(export_data->left_to_right_mat, object_left->obmat,
object_right_imat);
}
DerivedMesh *NewBooleanDerivedMesh(DerivedMesh *dm, struct Object *ob,
DerivedMesh *dm_select, struct Object *ob_select,
int int_op_type)
{
struct CarveMeshDescr *left, *right, *output = NULL;
DerivedMesh *output_dm = NULL;
int operation;
bool result;
DMArrays dm_left_arrays, dm_right_arrays;
if (dm == NULL || dm_select == NULL) {
return NULL;
}
operation = operation_from_optype(int_op_type);
if (operation == -1) {
return NULL;
}
dm_arrays_get(dm_select, &dm_left_arrays);
dm_arrays_get(dm, &dm_right_arrays);
left = carve_mesh_from_dm(ob_select, dm_select, &dm_left_arrays);
right = carve_mesh_from_dm(ob, dm, &dm_right_arrays);
result = carve_performBooleanOperation(left, right, operation, &output);
carve_deleteMesh(left);
carve_deleteMesh(right);
if (result) {
ExportMeshData export_data;
prepare_export_data(ob_select, dm_select, &dm_left_arrays,
ob, dm, &dm_right_arrays,
&export_data);
carve_exportMesh(output, &MeshExporter, &export_data);
output_dm = export_data.dm;
/* Free memory used by export mesh. */
BLI_ghash_free(export_data.material_hash, NULL, NULL);
output_dm->cd_flag |= dm->cd_flag | dm_select->cd_flag;
output_dm->dirty |= DM_DIRTY_NORMALS;
carve_deleteMesh(output);
}
dm_arrays_free(&dm_left_arrays);
dm_arrays_free(&dm_right_arrays);
return output_dm;
}