Replace nested `namespace blender { namespace io { namespace alembic {`
with `namespace blender::io::alembic {`.
No functional changes.
491 lines
15 KiB
C++
491 lines
15 KiB
C++
/*
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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.
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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., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301, USA.
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*
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* The Original Code is Copyright (C) 2016 Kévin Dietrich.
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* All rights reserved.
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*/
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/** \file
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* \ingroup balembic
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*/
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#include "abc_customdata.h"
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#include <Alembic/AbcGeom/All.h>
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#include <algorithm>
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#include <unordered_map>
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#include "DNA_customdata_types.h"
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#include "DNA_meshdata_types.h"
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#include "BLI_math_base.h"
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#include "BLI_utildefines.h"
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#include "BKE_customdata.h"
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/* NOTE: for now only UVs and Vertex Colors are supported for streaming.
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* Although Alembic only allows for a single UV layer per {I|O}Schema, and does
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* not have a vertex color concept, there is a convention between DCCs to write
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* such data in a way that lets other DCC know what they are for. See comments
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* in the write code for the conventions. */
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using Alembic::AbcGeom::kFacevaryingScope;
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using Alembic::AbcGeom::kVertexScope;
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using Alembic::Abc::C4fArraySample;
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using Alembic::Abc::UInt32ArraySample;
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using Alembic::Abc::V2fArraySample;
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using Alembic::AbcGeom::OC4fGeomParam;
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using Alembic::AbcGeom::OV2fGeomParam;
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namespace blender::io::alembic {
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static void get_uvs(const CDStreamConfig &config,
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std::vector<Imath::V2f> &uvs,
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std::vector<uint32_t> &uvidx,
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void *cd_data)
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{
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MLoopUV *mloopuv_array = static_cast<MLoopUV *>(cd_data);
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if (!mloopuv_array) {
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return;
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}
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const int num_poly = config.totpoly;
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MPoly *polygons = config.mpoly;
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MLoop *mloop = config.mloop;
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if (!config.pack_uvs) {
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int cnt = 0;
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uvidx.resize(config.totloop);
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uvs.resize(config.totloop);
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/* Iterate in reverse order to match exported polygons. */
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for (int i = 0; i < num_poly; i++) {
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MPoly ¤t_poly = polygons[i];
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MLoopUV *loopuv = mloopuv_array + current_poly.loopstart + current_poly.totloop;
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for (int j = 0; j < current_poly.totloop; j++, cnt++) {
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loopuv--;
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uvidx[cnt] = cnt;
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uvs[cnt][0] = loopuv->uv[0];
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uvs[cnt][1] = loopuv->uv[1];
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}
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}
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}
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else {
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/* Mapping for indexed UVs, deduplicating UV coordinates at vertices. */
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std::vector<std::vector<uint32_t>> idx_map(config.totvert);
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int idx_count = 0;
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for (int i = 0; i < num_poly; i++) {
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MPoly ¤t_poly = polygons[i];
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MLoop *looppoly = mloop + current_poly.loopstart + current_poly.totloop;
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MLoopUV *loopuv = mloopuv_array + current_poly.loopstart + current_poly.totloop;
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for (int j = 0; j < current_poly.totloop; j++) {
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looppoly--;
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loopuv--;
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Imath::V2f uv(loopuv->uv[0], loopuv->uv[1]);
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bool found_same = false;
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/* Find UV already in uvs array. */
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for (uint32_t uv_idx : idx_map[looppoly->v]) {
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if (uvs[uv_idx] == uv) {
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found_same = true;
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uvidx.push_back(uv_idx);
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break;
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}
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}
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/* UV doesn't exists for this vertex, add it. */
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if (!found_same) {
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uint32_t uv_idx = idx_count++;
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idx_map[looppoly->v].push_back(uv_idx);
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uvidx.push_back(uv_idx);
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uvs.push_back(uv);
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}
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}
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}
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}
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}
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const char *get_uv_sample(UVSample &sample, const CDStreamConfig &config, CustomData *data)
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{
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const int active_uvlayer = CustomData_get_active_layer(data, CD_MLOOPUV);
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if (active_uvlayer < 0) {
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return "";
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}
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void *cd_data = CustomData_get_layer_n(data, CD_MLOOPUV, active_uvlayer);
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get_uvs(config, sample.uvs, sample.indices, cd_data);
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return CustomData_get_layer_name(data, CD_MLOOPUV, active_uvlayer);
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}
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/* Convention to write UVs:
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* - V2fGeomParam on the arbGeomParam
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* - set scope as face varying
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* - (optional due to its behavior) tag as UV using Alembic::AbcGeom::SetIsUV
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*/
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static void write_uv(const OCompoundProperty &prop,
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CDStreamConfig &config,
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void *data,
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const char *name)
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{
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std::vector<uint32_t> indices;
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std::vector<Imath::V2f> uvs;
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get_uvs(config, uvs, indices, data);
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if (indices.empty() || uvs.empty()) {
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return;
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}
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std::string uv_map_name(name);
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OV2fGeomParam param = config.abc_uv_maps[uv_map_name];
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if (!param.valid()) {
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param = OV2fGeomParam(prop, name, true, kFacevaryingScope, 1);
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}
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OV2fGeomParam::Sample sample(V2fArraySample(&uvs.front(), uvs.size()),
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UInt32ArraySample(&indices.front(), indices.size()),
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kFacevaryingScope);
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param.set(sample);
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config.abc_uv_maps[uv_map_name] = param;
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}
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/* Convention to write Vertex Colors:
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* - C3fGeomParam/C4fGeomParam on the arbGeomParam
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* - set scope as vertex varying
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*/
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static void write_mcol(const OCompoundProperty &prop,
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const CDStreamConfig &config,
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void *data,
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const char *name)
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{
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const float cscale = 1.0f / 255.0f;
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MPoly *polys = config.mpoly;
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MLoop *mloops = config.mloop;
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MCol *cfaces = static_cast<MCol *>(data);
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std::vector<Imath::C4f> buffer;
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std::vector<uint32_t> indices;
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buffer.reserve(config.totvert);
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indices.reserve(config.totvert);
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Imath::C4f col;
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for (int i = 0; i < config.totpoly; i++) {
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MPoly *p = &polys[i];
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MCol *cface = &cfaces[p->loopstart + p->totloop];
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MLoop *mloop = &mloops[p->loopstart + p->totloop];
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for (int j = 0; j < p->totloop; j++) {
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cface--;
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mloop--;
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col[0] = cface->a * cscale;
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col[1] = cface->r * cscale;
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col[2] = cface->g * cscale;
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col[3] = cface->b * cscale;
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buffer.push_back(col);
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indices.push_back(buffer.size() - 1);
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}
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}
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OC4fGeomParam param(prop, name, true, kFacevaryingScope, 1);
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OC4fGeomParam::Sample sample(C4fArraySample(&buffer.front(), buffer.size()),
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UInt32ArraySample(&indices.front(), indices.size()),
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kVertexScope);
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param.set(sample);
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}
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void write_custom_data(const OCompoundProperty &prop,
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CDStreamConfig &config,
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CustomData *data,
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int data_type)
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{
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CustomDataType cd_data_type = static_cast<CustomDataType>(data_type);
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if (!CustomData_has_layer(data, cd_data_type)) {
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return;
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}
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const int active_layer = CustomData_get_active_layer(data, cd_data_type);
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const int tot_layers = CustomData_number_of_layers(data, cd_data_type);
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for (int i = 0; i < tot_layers; i++) {
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void *cd_data = CustomData_get_layer_n(data, cd_data_type, i);
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const char *name = CustomData_get_layer_name(data, cd_data_type, i);
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if (cd_data_type == CD_MLOOPUV) {
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/* Already exported. */
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if (i == active_layer) {
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continue;
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}
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write_uv(prop, config, cd_data, name);
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}
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else if (cd_data_type == CD_MLOOPCOL) {
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write_mcol(prop, config, cd_data, name);
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}
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}
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}
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/* ************************************************************************** */
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using Alembic::Abc::C3fArraySamplePtr;
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using Alembic::Abc::C4fArraySamplePtr;
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using Alembic::Abc::PropertyHeader;
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using Alembic::AbcGeom::IC3fGeomParam;
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using Alembic::AbcGeom::IC4fGeomParam;
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using Alembic::AbcGeom::IV2fGeomParam;
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static void read_uvs(const CDStreamConfig &config,
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void *data,
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const Alembic::AbcGeom::V2fArraySamplePtr &uvs,
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const Alembic::AbcGeom::UInt32ArraySamplePtr &indices)
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{
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MPoly *mpolys = config.mpoly;
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MLoopUV *mloopuvs = static_cast<MLoopUV *>(data);
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unsigned int uv_index, loop_index, rev_loop_index;
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for (int i = 0; i < config.totpoly; i++) {
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MPoly &poly = mpolys[i];
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unsigned int rev_loop_offset = poly.loopstart + poly.totloop - 1;
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for (int f = 0; f < poly.totloop; f++) {
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loop_index = poly.loopstart + f;
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rev_loop_index = rev_loop_offset - f;
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uv_index = (*indices)[loop_index];
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const Imath::V2f &uv = (*uvs)[uv_index];
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MLoopUV &loopuv = mloopuvs[rev_loop_index];
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loopuv.uv[0] = uv[0];
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loopuv.uv[1] = uv[1];
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}
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}
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}
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static size_t mcols_out_of_bounds_check(const size_t color_index,
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const size_t array_size,
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const std::string &iobject_full_name,
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const PropertyHeader &prop_header,
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bool &r_is_out_of_bounds,
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bool &r_bounds_warning_given)
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{
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if (color_index < array_size) {
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return color_index;
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}
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if (!r_bounds_warning_given) {
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std::cerr << "Alembic: color index out of bounds "
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"reading face colors for object "
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<< iobject_full_name << ", property " << prop_header.getName() << std::endl;
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r_bounds_warning_given = true;
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}
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r_is_out_of_bounds = true;
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return 0;
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}
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static void read_custom_data_mcols(const std::string &iobject_full_name,
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const ICompoundProperty &arbGeomParams,
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const PropertyHeader &prop_header,
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const CDStreamConfig &config,
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const Alembic::Abc::ISampleSelector &iss)
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{
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C3fArraySamplePtr c3f_ptr = C3fArraySamplePtr();
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C4fArraySamplePtr c4f_ptr = C4fArraySamplePtr();
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Alembic::Abc::UInt32ArraySamplePtr indices;
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bool use_c3f_ptr;
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bool is_facevarying;
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/* Find the correct interpretation of the data */
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if (IC3fGeomParam::matches(prop_header)) {
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IC3fGeomParam color_param(arbGeomParams, prop_header.getName());
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IC3fGeomParam::Sample sample;
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BLI_assert(STREQ("rgb", color_param.getInterpretation()));
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color_param.getIndexed(sample, iss);
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is_facevarying = sample.getScope() == kFacevaryingScope &&
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config.totloop == sample.getIndices()->size();
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c3f_ptr = sample.getVals();
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indices = sample.getIndices();
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use_c3f_ptr = true;
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}
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else if (IC4fGeomParam::matches(prop_header)) {
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IC4fGeomParam color_param(arbGeomParams, prop_header.getName());
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IC4fGeomParam::Sample sample;
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BLI_assert(STREQ("rgba", color_param.getInterpretation()));
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color_param.getIndexed(sample, iss);
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is_facevarying = sample.getScope() == kFacevaryingScope &&
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config.totloop == sample.getIndices()->size();
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c4f_ptr = sample.getVals();
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indices = sample.getIndices();
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use_c3f_ptr = false;
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}
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else {
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/* this won't happen due to the checks in read_custom_data() */
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return;
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}
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BLI_assert(c3f_ptr || c4f_ptr);
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/* Read the vertex colors */
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void *cd_data = config.add_customdata_cb(
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config.mesh, prop_header.getName().c_str(), CD_MLOOPCOL);
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MCol *cfaces = static_cast<MCol *>(cd_data);
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MPoly *mpolys = config.mpoly;
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MLoop *mloops = config.mloop;
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size_t face_index = 0;
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size_t color_index;
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bool bounds_warning_given = false;
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/* The colors can go through two layers of indexing. Often the 'indices'
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* array doesn't do anything (i.e. indices[n] = n), but when it does, it's
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* important. Blender 2.79 writes indices incorrectly (see T53745), which
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* is why we have to check for indices->size() > 0 */
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bool use_dual_indexing = is_facevarying && indices->size() > 0;
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for (int i = 0; i < config.totpoly; i++) {
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MPoly *poly = &mpolys[i];
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MCol *cface = &cfaces[poly->loopstart + poly->totloop];
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MLoop *mloop = &mloops[poly->loopstart + poly->totloop];
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for (int j = 0; j < poly->totloop; j++, face_index++) {
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cface--;
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mloop--;
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color_index = is_facevarying ? face_index : mloop->v;
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if (use_dual_indexing) {
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color_index = (*indices)[color_index];
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}
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if (use_c3f_ptr) {
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bool is_mcols_out_of_bounds = false;
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color_index = mcols_out_of_bounds_check(color_index,
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c3f_ptr->size(),
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iobject_full_name,
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prop_header,
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is_mcols_out_of_bounds,
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bounds_warning_given);
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if (is_mcols_out_of_bounds) {
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continue;
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}
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const Imath::C3f &color = (*c3f_ptr)[color_index];
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cface->a = unit_float_to_uchar_clamp(color[0]);
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cface->r = unit_float_to_uchar_clamp(color[1]);
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cface->g = unit_float_to_uchar_clamp(color[2]);
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cface->b = 255;
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}
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else {
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bool is_mcols_out_of_bounds = false;
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color_index = mcols_out_of_bounds_check(color_index,
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c4f_ptr->size(),
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iobject_full_name,
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prop_header,
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is_mcols_out_of_bounds,
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bounds_warning_given);
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if (is_mcols_out_of_bounds) {
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continue;
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}
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const Imath::C4f &color = (*c4f_ptr)[color_index];
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cface->a = unit_float_to_uchar_clamp(color[0]);
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cface->r = unit_float_to_uchar_clamp(color[1]);
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cface->g = unit_float_to_uchar_clamp(color[2]);
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cface->b = unit_float_to_uchar_clamp(color[3]);
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}
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}
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}
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}
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static void read_custom_data_uvs(const ICompoundProperty &prop,
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const PropertyHeader &prop_header,
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const CDStreamConfig &config,
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const Alembic::Abc::ISampleSelector &iss)
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{
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IV2fGeomParam uv_param(prop, prop_header.getName());
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if (!uv_param.isIndexed()) {
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return;
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}
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IV2fGeomParam::Sample sample;
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uv_param.getIndexed(sample, iss);
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if (uv_param.getScope() != kFacevaryingScope) {
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return;
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}
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void *cd_data = config.add_customdata_cb(config.mesh, prop_header.getName().c_str(), CD_MLOOPUV);
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read_uvs(config, cd_data, sample.getVals(), sample.getIndices());
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}
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void read_custom_data(const std::string &iobject_full_name,
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const ICompoundProperty &prop,
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const CDStreamConfig &config,
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const Alembic::Abc::ISampleSelector &iss)
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{
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if (!prop.valid()) {
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return;
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}
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int num_uvs = 0;
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int num_colors = 0;
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const size_t num_props = prop.getNumProperties();
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for (size_t i = 0; i < num_props; i++) {
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const Alembic::Abc::PropertyHeader &prop_header = prop.getPropertyHeader(i);
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/* Read UVs according to convention. */
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if (IV2fGeomParam::matches(prop_header) && Alembic::AbcGeom::isUV(prop_header)) {
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if (++num_uvs > MAX_MTFACE) {
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continue;
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}
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read_custom_data_uvs(prop, prop_header, config, iss);
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continue;
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}
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/* Read vertex colors according to convention. */
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if (IC3fGeomParam::matches(prop_header) || IC4fGeomParam::matches(prop_header)) {
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if (++num_colors > MAX_MCOL) {
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continue;
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}
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read_custom_data_mcols(iobject_full_name, prop, prop_header, config, iss);
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continue;
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}
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}
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}
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} // namespace blender::io::alembic
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