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IfcOpenShell/src/ifcconvert/IfcConvert.cpp
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/********************************************************************************
* *
* This file is part of IfcOpenShell. *
* *
* IfcOpenShell is free software: you can redistribute it and/or modify *
* it under the terms of the Lesser GNU General Public License as published by *
* the Free Software Foundation, either version 3.0 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 *
* Lesser GNU General Public License for more details. *
* *
* You should have received a copy of the Lesser GNU General Public License *
* along with this program. If not, see <http://www.gnu.org/licenses/>. *
* *
********************************************************************************/
/********************************************************************************
* *
* This started as a brief example of how IfcOpenShell can be interfaced from *
* within a C++ context, it has since then evolved into a fullfledged command *
* line application that is able to convert geometry in an IFC files into *
* several tesselated and topological output formats. *
* *
********************************************************************************/
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#include "../serializers/ColladaSerializer.h"
#include "../serializers/GltfSerializer.h"
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#include "../serializers/IgesSerializer.h"
#include "../serializers/StepSerializer.h"
#include "../serializers/WavefrontObjSerializer.h"
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#include "../serializers/XmlSerializer.h"
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#include "../serializers/SvgSerializer.h"
#include "../ifcgeom_schema_agnostic/IfcGeomFilter.h"
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#include "../ifcgeom_schema_agnostic/IfcGeomIterator.h"
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#include "../ifcgeom_schema_agnostic/IfcGeomRenderStyles.h"
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#include "../ifcparse/utils.h"
#include <Standard_Version.hxx>
#if OCC_VERSION_HEX < 0x60900
#include <IGESControl_Controller.hxx>
#endif
#include <boost/program_options.hpp>
#include <boost/make_shared.hpp>
#include <fstream>
#include <sstream>
#include <set>
#include <time.h>
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#if USE_VLD
#include <vld.h>
#endif
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#ifdef _MSC_VER
#include <io.h>
#include <fcntl.h>
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#endif
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#include <random>
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#include <thread>
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#if defined(_MSC_VER) && defined(_UNICODE)
typedef std::wstring path_t;
static std::wostream& cout_ = std::wcout;
static std::wostream& cerr_ = std::wcerr;
#else
typedef std::string path_t;
static std::ostream& cout_ = std::cout;
static std::ostream& cerr_ = std::cerr;
#endif
const std::string DEFAULT_EXTENSION = ".obj";
const std::string TEMP_FILE_EXTENSION = ".tmp";
namespace po = boost::program_options;
void print_version()
{
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cout_ << "IfcOpenShell IfcConvert " << IFCOPENSHELL_VERSION << " (OCC " << OCC_VERSION_STRING_EXT << ")\n";
}
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void print_usage(bool suggest_help = true)
{
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cout_ << "Usage: IfcConvert [options] <input.ifc> [<output>]\n"
<< "\n"
<< "Converts (the geometry in) an IFC file into one of the following formats:\n"
<< " .obj WaveFront OBJ (a .mtl file is also created)\n"
#ifdef WITH_OPENCOLLADA
<< " .dae Collada Digital Assets Exchange\n"
#endif
#ifdef WITH_GLTF
<< " .glb glTF Binary glTF v2.0\n"
#endif
<< " .stp STEP Standard for the Exchange of Product Data\n"
<< " .igs IGES Initial Graphics Exchange Specification\n"
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<< " .xml XML Property definitions and decomposition tree\n"
<< " .svg SVG Scalable Vector Graphics (2D floor plan)\n"
<< " .ifc IFC-SPF Industry Foundation Classes\n"
<< "\n"
<< "If no output filename given, <input>" << IfcUtil::path::from_utf8(DEFAULT_EXTENSION) << " will be used as the output file.\n";
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if (suggest_help) {
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cout_ << "\nRun 'IfcConvert --help' for more information.";
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}
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cout_ << std::endl;
}
/// @todo Add help for single option
void print_options(const po::options_description& options)
{
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#if defined(_MSC_VER) && defined(_UNICODE)
// See issue https://svn.boost.org/trac10/ticket/10952
std::ostringstream temp;
temp << options;
cout_ << "\n" << temp.str().c_str();
#else
cout_ << "\n" << options;
#endif
cout_ << std::endl;
}
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template <typename T>
T change_extension(const T& fn, const T& ext) {
typename T::size_type dot = fn.find_last_of('.');
if (dot != T::npos) {
return fn.substr(0, dot) + ext;
} else {
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return fn + ext;
}
}
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bool file_exists(const std::string& filename) {
std::ifstream file(IfcUtil::path::from_utf8(filename).c_str());
return file.good();
}
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static std::basic_stringstream<path_t::value_type> log_stream;
void write_log(bool);
void fix_quantities(IfcParse::IfcFile&, bool, bool, bool);
std::string format_duration(time_t start, time_t end);
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/// @todo make the filters non-global
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IfcGeom::entity_filter entity_filter; // Entity filter is used always by default.
IfcGeom::layer_filter layer_filter;
IfcGeom::attribute_filter attribute_filter;
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struct geom_filter
{
geom_filter(bool include, bool traverse) : type(UNUSED), include(include), traverse(traverse) {}
geom_filter() : type(UNUSED), include(false), traverse(false) {}
enum filter_type { UNUSED, ENTITY_TYPE, LAYER_NAME, ENTITY_ARG };
filter_type type;
bool include;
bool traverse;
std::string arg;
std::set<std::string> values;
};
// Specialized classes for knowing which type of filter we are validating within validate().
// Could not figure out easily how else to know it if using single type for both.
struct inclusion_filter : public geom_filter { inclusion_filter() : geom_filter(true, false) {} };
struct inclusion_traverse_filter : public geom_filter { inclusion_traverse_filter() : geom_filter(true, true) {} };
struct exclusion_filter : public geom_filter { exclusion_filter() : geom_filter(false, false) {} };
struct exclusion_traverse_filter : public geom_filter { exclusion_traverse_filter() : geom_filter(false, true) {} };
size_t read_filters_from_file(const std::string&, inclusion_filter&, inclusion_traverse_filter&, exclusion_filter&, exclusion_traverse_filter&);
void parse_filter(geom_filter &, const std::vector<std::string>&);
std::vector<IfcGeom::filter_t> setup_filters(const std::vector<geom_filter>&, const std::string&);
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bool init_input_file(const std::string& filename, IfcParse::IfcFile*& ifc_file, bool no_progress, bool mmap);
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#if defined(_MSC_VER) && defined(_UNICODE)
int wmain(int argc, wchar_t** argv) {
typedef po::wcommand_line_parser command_line_parser;
typedef wchar_t char_t;
_setmode(_fileno(stdout), _O_U16TEXT);
_setmode(_fileno(stderr), _O_U16TEXT);
#else
int main(int argc, char** argv) {
typedef po::command_line_parser command_line_parser;
typedef char char_t;
#endif
double deflection_tolerance;
inclusion_filter include_filter;
inclusion_traverse_filter include_traverse_filter;
exclusion_filter exclude_filter;
exclusion_traverse_filter exclude_traverse_filter;
path_t filter_filename;
path_t default_material_filename;
std::string log_format;
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po::options_description generic_options("Command line options");
generic_options.add_options()
("help,h", "display usage information")
("version", "display version information")
("verbose,v", "more verbose log messages")
("quiet,q", "less status and progress output")
("stderr-progress", "output progress to stderr stream")
("yes,y", "answer 'yes' automatically to possible confirmation queries (e.g. overwriting an existing output file)")
("no-progress", "suppress possible progress bar type of prints that use carriage return")
("log-format", po::value<std::string>(&log_format), "log format: plain or json");
po::options_description fileio_options;
fileio_options.add_options()
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#ifdef USE_MMAP
("mmap", "use memory-mapped file for input")
#endif
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("input-file", new po::typed_value<path_t, char_t>(0), "input IFC file")
("output-file", new po::typed_value<path_t, char_t>(0), "output geometry file");
po::options_description ifc_options("IFC options");
ifc_options.add_options()
("calculate-quantities", "Calculate or fix the physical quantity definitions "
"based on an interpretation of the geometry when exporting IFC");
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int num_threads;
po::options_description geom_options("Geometry options");
geom_options.add_options()
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("threads,j", po::value<int>(&num_threads)->default_value(1),
"Number of parallel processing threads for geometry interpretation.")
("plan",
"Specifies whether to include curves in the output result. Typically "
"these are representations of type Plan or Axis. Excluded by default.")
("model",
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"Specifies whether to include surfaces and solids in the output result. "
"Typically these are representations of type Body or Facetation. "
"Included by default.")
("weld-vertices",
"Specifies whether vertices are welded, meaning that the coordinates "
"vector will only contain unique xyz-triplets. This results in a "
"manifold mesh which is useful for modelling applications, but might "
"result in unwanted shading artefacts in rendering applications.")
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("use-world-coords",
"Specifies whether to apply the local placements of building elements "
"directly to the coordinates of the representation mesh rather than "
"to represent the local placement in the 4x3 matrix, which will in that "
"case be the identity matrix.")
("convert-back-units",
"Specifies whether to convert back geometrical output back to the "
"unit of measure in which it is defined in the IFC file. Default is "
"to use meters.")
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("orient-shells",
"Specifies whether to orient the faces of IfcConnectedFaceSets. "
"This is a potentially time consuming operation, but guarantees a "
"consistent orientation of surface normals, even if the faces are not "
"properly oriented in the IFC file.")
#if OCC_VERSION_HEX < 0x60900
// In Open CASCADE version prior to 6.9.0 boolean operations with multiple
// arguments where not introduced yet and a work-around was implemented to
// subtract multiple openings as a single compound. This hack is obsolete
// for newer versions of Open CASCADE.
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("merge-boolean-operands",
"Specifies whether to merge all IfcOpeningElement operands into a single "
"operand before applying the subtraction operation. This may "
"introduce a performance improvement at the risk of failing, in "
"which case the subtraction is applied one-by-one.")
#endif
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("disable-opening-subtractions",
"Specifies whether to disable the boolean subtraction of "
"IfcOpeningElement Representations from their RelatingElements.")
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("enable-layerset-slicing",
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"Specifies whether to enable the slicing of products according "
"to their associated IfcMaterialLayerSet.")
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("include", po::value<inclusion_filter>(&include_filter)->multitoken(),
"Specifies that the instances that match a specific filtering criteria are to be included in the geometrical output:\n"
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"1) 'entities': the following list of types should be included. SVG output defaults "
"to IfcSpace to be included. The entity names are handled case-insensitively.\n"
"2) 'layers': the instances that are assigned to presentation layers of which names "
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"match the given values should be included.\n"
"3) 'attribute <AttributeName>': products whose value for <AttributeName> should be included\n. "
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"Currently supported arguments are GlobalId, Name, Description, and Tag.\n\n"
"The values for 'layers' and 'arg' are handled case-sensitively (wildcards supported)."
"--include and --exclude cannot be placed right before input file argument and "
"only single of each argument supported for now. See also --exclude.")
("include+", po::value<inclusion_traverse_filter>(&include_traverse_filter)->multitoken(),
"Same as --include but applies filtering also to the decomposition and/or containment (IsDecomposedBy, "
"HasOpenings, FillsVoid, ContainedInStructure) of the filtered entity, e.g. --include+=arg Name \"Level 1\" "
"includes entity with name \"Level 1\" and all of its children. See --include for more information. ")
("exclude", po::value<exclusion_filter>(&exclude_filter)->multitoken(),
"Specifies that the entities that match a specific filtering criteria are to be excluded in the geometrical output."
"See --include for syntax and more details. The default value is '--exclude=entities IfcOpeningElement IfcSpace'.")
("exclude+", po::value<exclusion_traverse_filter>(&exclude_traverse_filter)->multitoken(),
"Same as --exclude but applies filtering also to the decomposition and/or containment "
"of the filtered entity. See --include+ for more details.")
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("filter-file", new po::typed_value<path_t, char_t>(&filter_filename),
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"Specifies a filter file that describes the used filtering criteria. Supported formats "
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"are '--include=arg GlobalId ...' and 'include arg GlobalId ...'. Spaces and tabs can be used as delimiters."
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"Multiple filters of same type with different values can be inserted on their own lines. "
"See --include, --include+, --exclude, and --exclude+ for more details.")
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("no-normals",
"Disables computation of normals. Saves time and file size and is useful "
"in instances where you're going to recompute normals for the exported "
"model in other modelling application in any case.")
("deflection-tolerance", po::value<double>(&deflection_tolerance)->default_value(1e-3),
"Sets the deflection tolerance of the mesher, 1e-3 by default if not specified.")
("generate-uvs",
"Generates UVs (texture coordinates) by using simple box projection. Requires normals. "
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"Not guaranteed to work properly if used with --weld-vertices.")
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("default-material-file", new po::typed_value<path_t, char_t>(&default_material_filename),
"Specifies a material file that describes the material object types will have"
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"if an object does not have any specified material in the IFC file.")
("validate", "Checks whether geometrical output conforms to the included explicit quantities.");
std::string bounds, offset_str;
#ifdef HAVE_ICU
std::string unicode_mode;
#endif
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short precision;
double section_height;
po::options_description serializer_options("Serialization options");
serializer_options.add_options()
#ifdef HAVE_ICU
("unicode", po::value<std::string>(&unicode_mode),
"Specifies the Unicode handling behavior when parsing the IFC file. "
"Accepted values 'utf8' (the default) and 'escape'.")
#endif
("bounds", po::value<std::string>(&bounds),
"Specifies the bounding rectangle, for example 512x512, to which the "
"output will be scaled. Only used when converting to SVG.")
("section-height", po::value<double>(&section_height),
"Specifies the cut section height for SVG 2D geometry.")
("use-element-names",
"Use entity names instead of unique IDs for naming elements upon serialization. "
"Applicable for OBJ, DAE, and SVG output.")
("use-element-guids",
"Use entity GUIDs instead of unique IDs for naming elements upon serialization. "
"Applicable for OBJ, DAE, and SVG output.")
("use-material-names",
"Use material names instead of unique IDs for naming materials upon serialization. "
"Applicable for OBJ and DAE output.")
("use-element-types",
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"Use element types instead of unique IDs for naming elements upon serialization. "
"Applicable for DAE output.")
("use-element-hierarchy",
"Order the elements using their IfcBuildingStorey parent. "
"Applicable for DAE output.")
("center-model",
"Centers the elements upon serialization by applying the center point of "
"all placements as an offset. Applicable for OBJ and DAE output. Can take several minutes on large models.")
("model-offset", po::value<std::string>(&offset_str),
"Applies an arbitrary offset of form 'x;y;z' to all placements. Applicable for OBJ and DAE output.")
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("site-local-placement",
"Place elements locally in the IfcSite coordinate system, instead of placing "
"them in the IFC global coords. Applicable for OBJ and DAE output.")
("building-local-placement",
"Similar to --site-local-placement, but placing elements in locally in the parent IfcBuilding coord system")
("precision", po::value<short>(&precision)->default_value(SerializerSettings::DEFAULT_PRECISION),
"Sets the precision to be used to format floating-point values, 15 by default. "
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"Use a negative value to use the system's default precision (should be 6 typically). "
"Applicable for OBJ and DAE output. For DAE output, value >= 15 means that up to 16 decimals are used, "
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" and any other value means that 6 or 7 decimals are used.")
("print-space-names", "Prints IfcSpace LongName and Name in the geometry output. Applicable for SVG output");
po::options_description cmdline_options;
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cmdline_options.add(generic_options).add(fileio_options).add(geom_options).add(ifc_options).add(serializer_options);
po::positional_options_description positional_options;
positional_options.add("input-file", 1);
positional_options.add("output-file", 1);
po::variables_map vmap;
try {
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po::store(command_line_parser(argc, argv).
options(cmdline_options).positional(positional_options).run(), vmap);
} catch (const po::unknown_option& e) {
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cerr_ << "[Error] Unknown option '" << e.get_option_name().c_str() << "'\n\n";
print_usage();
return EXIT_FAILURE;
} catch (const po::error_with_option_name& e) {
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cerr_ << "[Error] Invalid usage of '" << e.get_option_name().c_str() << "': " << e.what() << "\n\n";
return EXIT_FAILURE;
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} catch (const std::exception& e) {
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cerr_ << "[Error] " << e.what() << "\n\n";
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print_usage();
return EXIT_FAILURE;
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} catch (...) {
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cerr_ << "[Error] Unknown error parsing command line options\n\n";
print_usage();
return EXIT_FAILURE;
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}
po::notify(vmap);
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const bool mmap = vmap.count("mmap") != 0;
const bool verbose = vmap.count("verbose") != 0;
const bool no_progress = vmap.count("no-progress") != 0;
const bool quiet = vmap.count("quiet") != 0;
const bool stderr_progress = vmap.count("stderr-progress") != 0;
const bool weld_vertices = vmap.count("weld-vertices") != 0;
const bool use_world_coords = vmap.count("use-world-coords") != 0;
const bool convert_back_units = vmap.count("convert-back-units") != 0;
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const bool orient_shells = vmap.count("orient-shells") != 0;
#if OCC_VERSION_HEX < 0x60900
const bool merge_boolean_operands = vmap.count("merge-boolean-operands") != 0;
#endif
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const bool disable_opening_subtractions = vmap.count("disable-opening-subtractions") != 0;
const bool include_plan = vmap.count("plan") != 0;
const bool include_model = vmap.count("model") != 0 || (!include_plan);
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const bool enable_layerset_slicing = vmap.count("enable-layerset-slicing") != 0;
const bool use_element_names = vmap.count("use-element-names") != 0;
const bool use_element_guids = vmap.count("use-element-guids") != 0;
const bool use_material_names = vmap.count("use-material-names") != 0;
const bool use_element_types = vmap.count("use-element-types") != 0;
const bool use_element_hierarchy = vmap.count("use-element-hierarchy") != 0;
const bool no_normals = vmap.count("no-normals") != 0;
const bool center_model = vmap.count("center-model") != 0;
const bool model_offset = vmap.count("model-offset") != 0;
const bool site_local_placement = vmap.count("site-local-placement") != 0;
const bool building_local_placement = vmap.count("building-local-placement") != 0;
const bool generate_uvs = vmap.count("generate-uvs") != 0;
const bool validate = vmap.count("validate") != 0;
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if (!quiet || vmap.count("version")) {
print_version();
}
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if (vmap.count("version")) {
return EXIT_SUCCESS;
} else if (vmap.count("help")) {
print_usage(false);
print_options(generic_options.add(geom_options).add(serializer_options));
return EXIT_SUCCESS;
} else if (!vmap.count("input-file")) {
std::cerr << "[Error] Input file not specified" << std::endl;
print_usage();
return EXIT_FAILURE;
}
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if (vmap.count("log-format") == 1) {
boost::to_lower(log_format);
if (log_format == "plain") {
Logger::OutputFormat(Logger::FMT_PLAIN);
} else if (log_format == "json") {
Logger::OutputFormat(Logger::FMT_JSON);
} else {
std::cerr << "[Error] --log-format should be either plain or json" << std::endl;
print_usage();
return EXIT_FAILURE;
}
}
if (!filter_filename.empty()) {
size_t num_filters = read_filters_from_file(IfcUtil::path::to_utf8(filter_filename), include_filter, include_traverse_filter, exclude_filter, exclude_traverse_filter);
if (num_filters) {
Logger::Notice(boost::lexical_cast<std::string>(num_filters) + " filters read from specifified file.");
} else {
std::cerr << "[Error] No filters read from specifified file.\n";
return EXIT_FAILURE;
}
}
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#ifdef HAVE_ICU
if (!unicode_mode.empty()) {
if (unicode_mode == "utf8") {
IfcParse::IfcCharacterDecoder::mode = IfcParse::IfcCharacterDecoder::UTF8;
} else if (unicode_mode == "escape") {
IfcParse::IfcCharacterDecoder::mode = IfcParse::IfcCharacterDecoder::JSON;
} else {
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cerr_ << "[Error] Invalid value for --unicode" << std::endl;
print_options(serializer_options);
return 1;
}
}
#endif
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if (!default_material_filename.empty()) {
try {
IfcGeom::set_default_style_file(IfcUtil::path::to_utf8(default_material_filename));
} catch (const std::exception& e) {
std::cerr << "[Error] Could not read default material file:" << std::endl;
std::cerr << e.what() << std::endl;
return EXIT_FAILURE;
}
}
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boost::optional<double> bounding_width;
boost::optional<double> bounding_height;
if (vmap.count("bounds") == 1) {
int w, h;
if (sscanf(bounds.c_str(), "%ux%u", &w, &h) == 2 && w > 0 && h > 0) {
bounding_width = w;
bounding_height = h;
} else {
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cerr_ << "[Error] Invalid use of --bounds" << std::endl;
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print_options(serializer_options);
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return EXIT_FAILURE;
}
}
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const path_t input_filename = vmap["input-file"].as<path_t>();
if (!file_exists(IfcUtil::path::to_utf8(input_filename))) {
cerr_ << "[Error] Input file '" << input_filename << "' does not exist" << std::endl;
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return EXIT_FAILURE;
}
// If no output filename is specified a Wavefront OBJ file will be output
// to maintain backwards compatibility with the obsolete IfcObj executable.
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const path_t output_filename = vmap.count("output-file") == 1
? vmap["output-file"].as<path_t>()
: change_extension(input_filename, IfcUtil::path::from_utf8(DEFAULT_EXTENSION));
if (output_filename.size() < 5) {
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cerr_ << "[Error] Invalid or unsupported output file '" << output_filename << "' given" << std::endl;
print_usage();
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return EXIT_FAILURE;
}
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if (file_exists(IfcUtil::path::to_utf8(output_filename)) && !vmap.count("yes")) {
std::string answer;
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cout_ << "A file '" << output_filename << "' already exists. Overwrite the existing file?" << std::endl;
std::cin >> answer;
if (!boost::iequals(answer, "yes") && !boost::iequals(answer, "y")) {
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return EXIT_SUCCESS;
}
}
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Logger::SetOutput(quiet ? nullptr : &cout_, &log_stream);
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Logger::Verbosity(verbose ? Logger::LOG_NOTICE : Logger::LOG_ERROR);
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path_t output_temp_filename = output_filename + IfcUtil::path::from_utf8(TEMP_FILE_EXTENSION);
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path_t output_extension = output_filename.substr(output_filename.size()-4);
boost::to_lower(output_extension);
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IfcParse::IfcFile* ifc_file = 0;
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const path_t OBJ = IfcUtil::path::from_utf8(".obj"),
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MTL = IfcUtil::path::from_utf8(".mtl"),
DAE = IfcUtil::path::from_utf8(".dae"),
GLB = IfcUtil::path::from_utf8(".glb"),
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STP = IfcUtil::path::from_utf8(".stp"),
IGS = IfcUtil::path::from_utf8(".igs"),
SVG = IfcUtil::path::from_utf8(".svg"),
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XML = IfcUtil::path::from_utf8(".xml"),
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IFC = IfcUtil::path::from_utf8(".ifc");
// @todo clean up serializer selection
// @todo detect program options that conflict with the chosen serializer
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if (output_extension == XML) {
int exit_code = EXIT_FAILURE;
try {
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if (init_input_file(IfcUtil::path::to_utf8(input_filename), ifc_file, no_progress || quiet, mmap)) {
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time_t start, end;
time(&start);
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XmlSerializer s(ifc_file, IfcUtil::path::to_utf8(output_temp_filename));
Logger::Status("Writing XML output...");
s.finalize();
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time(&end);
Logger::Status("Done! Conversion took " + format_duration(start, end));
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IfcUtil::path::rename_file(IfcUtil::path::to_utf8(output_temp_filename), IfcUtil::path::to_utf8(output_filename));
exit_code = EXIT_SUCCESS;
}
} catch (const std::exception& e) {
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Logger::Error(e);
}
write_log(!quiet);
return exit_code;
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} else if (output_extension == IFC) {
int exit_code = EXIT_FAILURE;
try {
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if (init_input_file(IfcUtil::path::to_utf8(input_filename), ifc_file, no_progress || quiet, mmap)) {
time_t start, end;
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time(&start);
std::ofstream fs(output_filename.c_str());
if (fs.is_open()) {
if (vmap.count("calculate-quantities")) {
fix_quantities(*ifc_file, no_progress, quiet, stderr_progress);
}
fs << *ifc_file;
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exit_code = EXIT_SUCCESS;
} else {
Logger::Error("Unable to open output file for writing");
}
time(&end);
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Logger::Status("Done! Writing IFC took " + format_duration(start, end));
}
} catch (const std::exception& e) {
Logger::Error(e);
}
write_log(!quiet);
return exit_code;
}
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/// @todo Clean up this filter code further.
std::vector<geom_filter> used_filters;
if (include_filter.type != geom_filter::UNUSED) { used_filters.push_back(include_filter); }
if (include_traverse_filter.type != geom_filter::UNUSED) { used_filters.push_back(include_traverse_filter); }
if (exclude_filter.type != geom_filter::UNUSED) { used_filters.push_back(exclude_filter); }
if (exclude_traverse_filter.type != geom_filter::UNUSED) { used_filters.push_back(exclude_traverse_filter); }
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std::vector<IfcGeom::filter_t> filter_funcs = setup_filters(used_filters, IfcUtil::path::to_utf8(output_extension));
if (filter_funcs.empty()) {
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cerr_ << "[Error] Failed to set up geometry filters\n";
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return EXIT_FAILURE;
}
if (!entity_filter.entity_names.empty()) { entity_filter.update_description(); Logger::Notice(entity_filter.description); }
if (!layer_filter.values.empty()) { layer_filter.update_description(); Logger::Notice(layer_filter.description); }
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if (!attribute_filter.attribute_name.empty()) { attribute_filter.update_description(); Logger::Notice(attribute_filter.description); }
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#ifdef _MSC_VER
if (output_extension == DAE || output_extension == STP || output_extension == IGS) {
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#else
if (output_extension == DAE) {
#endif
// These serializers do not support opening unicode paths. Therefore
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// a random temp file is generated using only ASCII characters instead.
std::random_device rng;
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std::uniform_int_distribution<int> index_dist('A', 'Z');
{
std::string v = ".ifcopenshell.";
output_temp_filename += path_t(v.begin(), v.end());
}
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for (int i = 0; i < 8; ++i) {
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output_temp_filename.push_back(static_cast<path_t::value_type>(index_dist(rng)));
}
{
std::string v = ".tmp.";
output_temp_filename += path_t(v.begin(), v.end());
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}
}
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SerializerSettings settings;
/// @todo Make APPLY_DEFAULT_MATERIALS configurable? Quickly tested setting this to false and using obj exporter caused the program to crash and burn.
settings.set(IfcGeom::IteratorSettings::APPLY_DEFAULT_MATERIALS, true);
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settings.set(IfcGeom::IteratorSettings::USE_WORLD_COORDS, use_world_coords || output_extension == SVG || output_extension == OBJ);
settings.set(IfcGeom::IteratorSettings::WELD_VERTICES, weld_vertices);
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settings.set(IfcGeom::IteratorSettings::SEW_SHELLS, orient_shells);
settings.set(IfcGeom::IteratorSettings::CONVERT_BACK_UNITS, convert_back_units);
#if OCC_VERSION_HEX < 0x60900
settings.set(IfcGeom::IteratorSettings::FASTER_BOOLEANS, merge_boolean_operands);
#endif
settings.set(IfcGeom::IteratorSettings::DISABLE_OPENING_SUBTRACTIONS, disable_opening_subtractions);
settings.set(IfcGeom::IteratorSettings::INCLUDE_CURVES, include_plan);
settings.set(IfcGeom::IteratorSettings::EXCLUDE_SOLIDS_AND_SURFACES, !include_model);
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settings.set(IfcGeom::IteratorSettings::APPLY_LAYERSETS, enable_layerset_slicing);
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settings.set(IfcGeom::IteratorSettings::NO_NORMALS, no_normals);
settings.set(IfcGeom::IteratorSettings::GENERATE_UVS, generate_uvs);
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settings.set(IfcGeom::IteratorSettings::SEARCH_FLOOR, use_element_hierarchy || output_extension == SVG);
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settings.set(IfcGeom::IteratorSettings::SITE_LOCAL_PLACEMENT, site_local_placement);
settings.set(IfcGeom::IteratorSettings::BUILDING_LOCAL_PLACEMENT, building_local_placement);
settings.set(IfcGeom::IteratorSettings::VALIDATE_QUANTITIES, validate);
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settings.set(SerializerSettings::USE_ELEMENT_NAMES, use_element_names);
settings.set(SerializerSettings::USE_ELEMENT_GUIDS, use_element_guids);
settings.set(SerializerSettings::USE_MATERIAL_NAMES, use_material_names);
settings.set(SerializerSettings::USE_ELEMENT_TYPES, use_element_types);
settings.set(SerializerSettings::USE_ELEMENT_HIERARCHY, use_element_hierarchy);
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settings.set_deflection_tolerance(deflection_tolerance);
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settings.precision = precision;
boost::shared_ptr<GeometrySerializer> serializer; /**< @todo use std::unique_ptr when possible */
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if (output_extension == OBJ) {
// Do not use temp file for MTL as it's such a small file.
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const path_t mtl_filename = change_extension(output_filename, MTL);
serializer = boost::make_shared<WaveFrontOBJSerializer>(IfcUtil::path::to_utf8(output_temp_filename), IfcUtil::path::to_utf8(mtl_filename), settings);
#ifdef WITH_OPENCOLLADA
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} else if (output_extension == DAE) {
serializer = boost::make_shared<ColladaSerializer>(IfcUtil::path::to_utf8(output_temp_filename), settings);
#endif
#ifdef WITH_GLTF
} else if (output_extension == GLB) {
serializer = boost::make_shared<GltfSerializer>(IfcUtil::path::to_utf8(output_temp_filename), settings);
#endif
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} else if (output_extension == STP) {
serializer = boost::make_shared<StepSerializer>(IfcUtil::path::to_utf8(output_temp_filename), settings);
} else if (output_extension == IGS) {
#if OCC_VERSION_HEX < 0x60900
// According to https://tracker.dev.opencascade.org/view.php?id=25689 something has been fixed in 6.9.0
IGESControl_Controller::Init(); // work around Open Cascade bug
#endif
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serializer = boost::make_shared<IgesSerializer>(IfcUtil::path::to_utf8(output_temp_filename), settings);
} else if (output_extension == SVG) {
settings.set(IfcGeom::IteratorSettings::DISABLE_TRIANGULATION, true);
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serializer = boost::make_shared<SvgSerializer>(IfcUtil::path::to_utf8(output_temp_filename), settings);
if (vmap.count("section-height") != 0) {
Logger::Notice("Overriding section height");
static_cast<SvgSerializer*>(serializer.get())->setSectionHeight(section_height);
}
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if (vmap.count("print-space-names") != 0) {
static_cast<SvgSerializer*>(serializer.get())->setPrintSpaceNames(true);
}
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if (bounding_width.is_initialized() && bounding_height.is_initialized()) {
static_cast<SvgSerializer*>(serializer.get())->setBoundingRectangle(bounding_width.get(), bounding_height.get());
}
} else {
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cerr_ << "[Error] Unknown output filename extension '" << output_extension << "'\n";
write_log(!quiet);
print_usage();
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return EXIT_FAILURE;
}
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if (use_element_hierarchy && output_extension != DAE) {
cerr_ << "[Error] --use-element-hierarchy can be used only with .dae output.\n";
/// @todo Lots of duplicate error-and-exit code.
write_log(!quiet);
print_usage();
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IfcUtil::path::delete_file(IfcUtil::path::to_utf8(output_temp_filename));
return EXIT_FAILURE;
}
const bool is_tesselated = serializer->isTesselated(); // isTesselated() doesn't change at run-time
if (!is_tesselated) {
if (weld_vertices) {
Logger::Notice("Weld vertices setting ignored when writing non-tesselated output");
}
if (generate_uvs) {
Logger::Notice("Generate UVs setting ignored when writing non-tesselated output");
}
if (center_model || model_offset) {
Logger::Notice("Centering/offsetting model setting ignored when writing non-tesselated output");
}
settings.set(IfcGeom::IteratorSettings::DISABLE_TRIANGULATION, true);
}
if (!serializer->ready()) {
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IfcUtil::path::delete_file(IfcUtil::path::to_utf8(output_temp_filename));
write_log(!quiet);
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return EXIT_FAILURE;
}
time_t start,end;
time(&start);
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if (!init_input_file(IfcUtil::path::to_utf8(input_filename), ifc_file, no_progress || quiet, mmap)) {
write_log(!quiet);
serializer.reset();
2019-02-08 15:18:55 +01:00
IfcUtil::path::delete_file(IfcUtil::path::to_utf8(output_temp_filename)); /**< @todo Windows Unicode support */
return EXIT_FAILURE;
}
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if (num_threads <= 0) {
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num_threads = std::thread::hardware_concurrency();
Logger::Notice("Using " + std::to_string(num_threads) + " threads");
}
if (!quiet && num_threads > 1) {
Logger::Status("Creating geometry...");
}
Logger::SetOutput(quiet ? nullptr : &cout_, &log_stream);
IfcGeom::Iterator<real_t> context_iterator(settings, ifc_file, filter_funcs, num_threads);
if (!context_iterator.initialize()) {
/// @todo It would be nice to know and print separate error prints for a case where we found no entities
/// and for a case we found no entities that satisfy our filtering criteria.
2018-12-29 12:34:32 +01:00
Logger::Notice("No geometrical elements found or none succesfully converted");
serializer.reset();
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IfcUtil::path::delete_file(IfcUtil::path::to_utf8(output_temp_filename));
write_log(!quiet);
return EXIT_FAILURE;
}
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serializer->setFile(context_iterator.file());
if (convert_back_units) {
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serializer->setUnitNameAndMagnitude(context_iterator.unit_name(), static_cast<float>(context_iterator.unit_magnitude()));
} else {
serializer->setUnitNameAndMagnitude("METER", 1.0f);
}
serializer->writeHeader();
int old_progress = quiet ? 0 : -1;
if (is_tesselated && (center_model || model_offset)) {
double* offset = serializer->settings().offset;
if (center_model) {
if (site_local_placement || building_local_placement) {
Logger::Error("Cannot use --center-model together with --{site,building}-local-placement");
2017-08-19 17:21:10 +02:00
return EXIT_FAILURE;
}
if (!quiet) Logger::Status("Computing bounds...");
context_iterator.compute_bounds();
if (!quiet) Logger::Status("Done!");
gp_XYZ center = (context_iterator.bounds_min() + context_iterator.bounds_max()) * 0.5;
offset[0] = -center.X();
offset[1] = -center.Y();
offset[2] = -center.Z();
} else {
if (sscanf(offset_str.c_str(), "%lf;%lf;%lf", &offset[0], &offset[1], &offset[2]) != 3) {
2019-02-08 15:18:55 +01:00
cerr_ << "[Error] Invalid use of --model-offset\n";
IfcUtil::path::delete_file(IfcUtil::path::to_utf8(output_temp_filename));
print_options(serializer_options);
return EXIT_FAILURE;
}
}
std::stringstream msg;
msg << "Using model offset (" << offset[0] << "," << offset[1] << "," << offset[2] << ")";
Logger::Notice(msg.str());
}
if (!quiet) {
2019-07-09 16:00:58 +02:00
if (num_threads == 1) {
Logger::Status("Creating geometry...");
} else {
Logger::Status("Writing geometry...");
}
}
// The functions IfcGeom::Iterator::get() and IfcGeom::Iterator::next()
// wrap an iterator of all geometrical products in the Ifc file.
// IfcGeom::Iterator::get() returns an IfcGeom::TriangulationElement or
// -BRepElement pointer, based on current settings. (see IfcGeomIterator.h
// for definition) IfcGeom::Iterator::next() is used to poll whether more
// geometrical entities are available. None of these functions throw
// exceptions, neither for parsing errors or geometrical errors. Upon
// calling next() the entity to be returned has already been processed, a
// non-null return value guarantees that a successfully processed product is
// available.
size_t num_created = 0;
do {
IfcGeom::Element<real_t> *geom_object = context_iterator.get();
2017-04-20 15:06:49 +02:00
2017-04-21 15:49:34 +02:00
if (is_tesselated)
{
2017-04-21 15:49:34 +02:00
serializer->write(static_cast<const IfcGeom::TriangulationElement<real_t>*>(geom_object));
}
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else
{
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serializer->write(static_cast<const IfcGeom::BRepElement<real_t>*>(geom_object));
}
if (!no_progress) {
if (quiet) {
const int progress = context_iterator.progress();
for (; old_progress < progress; ++old_progress) {
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cout_ << ".";
if (stderr_progress)
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cerr_ << ".";
}
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cout_ << std::flush;
if (stderr_progress)
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cerr_ << std::flush;
} else {
const int progress = context_iterator.progress() / 2;
if (old_progress != progress) Logger::ProgressBar(progress);
old_progress = progress;
}
}
} while (++num_created, context_iterator.next());
if (!no_progress && quiet) {
for (; old_progress < 100; ++old_progress) {
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cout_ << ".";
if (stderr_progress)
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cerr_ << ".";
}
cout_ << std::flush;
if (stderr_progress) {
cerr_ << std::flush;
}
} else {
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const std::string task = ((num_threads == 1) ? "creating" : "writing");
Logger::Status("\rDone " + task + " geometry (" + boost::lexical_cast<std::string>(num_created) +
" objects) ");
}
serializer->finalize();
// Make sure the dtor is explicitly run here (e.g. output files are closed before renaming them).
serializer.reset();
// Renaming might fail (e.g. maybe the existing file was open in a viewer application)
// Do not remove the temp file as user can salvage the conversion result from it.
2019-02-08 15:18:55 +01:00
bool successful = IfcUtil::path::rename_file(IfcUtil::path::to_utf8(output_temp_filename), IfcUtil::path::to_utf8(output_filename));
if (!successful) {
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cerr_ << "Unable to write output file '" << output_filename << "', see '" <<
output_temp_filename << "' for the conversion result.";
}
if (validate && Logger::MaxSeverity() >= Logger::LOG_ERROR) {
2019-06-04 16:34:57 +02:00
Logger::Error("Errors encountered during processing.");
successful = false;
}
write_log(!quiet);
time(&end);
if (!quiet) {
Logger::Status("\nConversion took " + format_duration(start, end));
}
return successful ? EXIT_SUCCESS : EXIT_FAILURE;
}
std::string format_duration(time_t start, time_t end)
{
int seconds = (int)difftime(end, start);
std::stringstream ss;
int minutes = seconds / 60;
seconds = seconds % 60;
if (minutes > 0) {
ss << minutes << " minute";
if (minutes == 0 || minutes > 1) {
ss << "s";
}
ss << " ";
}
ss << seconds << " second";
if (seconds == 0 || seconds > 1) {
ss << "s";
}
return ss.str();
}
void write_log(bool header) {
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path_t log = log_stream.str();
if (!log.empty()) {
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if (header) {
cout_ << "\nLog:\n";
}
cout_ << log << std::endl;
}
}
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#include <boost/algorithm/string/predicate.hpp>
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bool init_input_file(const std::string& filename, IfcParse::IfcFile*& ifc_file, bool no_progress, bool mmap) {
time_t start, end;
2017-12-20 12:40:15 +01:00
// Prevent IfcFile::Init() prints by setting output to null temporarily
if (no_progress) { Logger::SetOutput(NULL, &log_stream); }
time(&start);
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#ifdef USE_MMAP
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ifc_file = new IfcParse::IfcFile(filename, mmap);
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#else
2017-08-09 12:55:03 +02:00
(void)mmap;
2018-08-29 12:54:25 +02:00
#ifdef WITH_IFCXML
if (boost::ends_with(boost::to_lower_copy(filename), ".ifcxml")) {
ifc_file = IfcParse::parse_ifcxml(filename);
} else
#endif
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ifc_file = new IfcParse::IfcFile(filename);
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if (!ifc_file || !ifc_file->good()) {
2017-07-23 14:52:04 +02:00
#endif
Logger::Error("Unable to parse input file '" + filename + "'");
return false;
}
time(&end);
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if (no_progress) { Logger::SetOutput(&cout_, &log_stream); }
else { Logger::Status("Parsing input file took " + format_duration(start, end)); }
return true;
2017-12-20 12:40:15 +01:00
}
bool append_filter(const std::string& type, const std::vector<std::string>& values, geom_filter& filter)
{
geom_filter temp;
parse_filter(temp, values);
// Merge values only if type and arg match.
if ((filter.type != geom_filter::UNUSED && filter.type != temp.type) || (!filter.arg.empty() && filter.arg != temp.arg)) {
2019-02-08 15:18:55 +01:00
cerr_ << "[Error] Multiple '" << type.c_str() << "' filters specified with different criteria\n";
return false;
}
filter.type = temp.type;
filter.values.insert(temp.values.begin(), temp.values.end());
filter.arg = temp.arg;
return true;
}
size_t read_filters_from_file(
const std::string& filename,
inclusion_filter& include_filter,
inclusion_traverse_filter& include_traverse_filter,
exclusion_filter& exclude_filter,
exclusion_traverse_filter& exclude_traverse_filter)
{
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std::ifstream filter_file(IfcUtil::path::from_utf8(filename).c_str());
if (!filter_file.is_open()) {
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cerr_ << "[Error] Unable to open filter file '" << IfcUtil::path::from_utf8(filename) << "' or the file does not exist.\n";
return 0;
}
size_t line_number = 1, num_filters = 0;
for (std::string line; std::getline(filter_file, line); ++line_number) {
boost::trim(line);
if (line.empty()) {
continue;
}
std::vector<std::string> values;
boost::split(values, line, boost::is_any_of("\t "), boost::token_compress_on);
if (values.empty()) {
continue;
}
std::string type = values.front();
values.erase(values.begin());
// Support both "--include=arg GlobalId 1VQ5n5$RrEbPk8le4ZCI81" and "include arg GlobalId 1VQ5n5$RrEbPk8le4ZCI81"
// and tolerate extraneous whitespace.
boost::trim_left_if(type, boost::is_any_of("-"));
size_t equal_pos = type.find('=');
if (equal_pos != std::string::npos) {
std::string value = type.substr(equal_pos + 1);
type = type.substr(0, equal_pos);
values.insert(values.begin(), value);
}
try {
if (type == "include") { if (append_filter("include", values, include_filter)) { ++num_filters; } }
else if (type == "include+") { if (append_filter("include+", values, include_traverse_filter)) { ++num_filters; } }
else if (type == "exclude") { if (append_filter("exclude", values, exclude_filter)) { ++num_filters; } }
else if (type == "exclude+") { if (append_filter("exclude+", values, exclude_traverse_filter)) { ++num_filters; } }
else {
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cerr_ << "[Error] Invalid filtering type at line " << boost::lexical_cast<path_t>(line_number) << "\n";
return 0;
}
} catch(...) {
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cerr_ << "[Error] Unable to parse filter at line " << boost::lexical_cast<path_t>(line_number) << ".\n";
return 0;
}
}
return num_filters;
}
void parse_filter(geom_filter &filter, const std::vector<std::string>& values)
{
if (values.size() == 0) {
throw po::validation_error(po::validation_error::at_least_one_value_required);
}
std::string type = *values.begin();
if (type == "entities") {
filter.type = geom_filter::ENTITY_TYPE;
} else if (type == "layers") {
filter.type = geom_filter::LAYER_NAME;
} else if (type == "attribute" || type == "arg") {
filter.type = geom_filter::ENTITY_ARG;
filter.arg = *(values.begin() + 1);
} else {
throw po::validation_error(po::validation_error::invalid_option_value);
}
filter.values.insert(values.begin() + (filter.type == geom_filter::ENTITY_ARG ? 2 : 1), values.end());
}
void validate(boost::any& v, const std::vector<std::string>& values, inclusion_filter*, int)
{
/// @todo For now only single --include, --include+, --exclude, or --exclude+ supported. Support having multiple.
po::validators::check_first_occurrence(v);
inclusion_filter filter;
parse_filter(filter, values);
v = filter;
}
void validate(boost::any& v, const std::vector<std::string>& values, inclusion_traverse_filter*, int)
{
po::validators::check_first_occurrence(v);
inclusion_traverse_filter filter;
parse_filter(filter, values);
v = filter;
}
void validate(boost::any& v, const std::vector<std::string>& values, exclusion_filter*, int)
{
po::validators::check_first_occurrence(v);
exclusion_filter filter;
parse_filter(filter, values);
v = filter;
}
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void validate(boost::any& v, const std::vector<std::string>& values, exclusion_traverse_filter*, int)
{
po::validators::check_first_occurrence(v);
exclusion_traverse_filter filter;
parse_filter(filter, values);
v = filter;
}
/// @todo Clean up this filter initialization code further.
/// @return References to the used filter functors, if none an error occurred.
std::vector<IfcGeom::filter_t> setup_filters(const std::vector<geom_filter>& filters, const std::string& output_extension)
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{
std::vector<IfcGeom::filter_t> filter_funcs;
for(auto& f: filters) {
if (f.type == geom_filter::ENTITY_TYPE) {
entity_filter.include = f.include;
entity_filter.traverse = f.traverse;
entity_filter.entity_names = f.values;
} else if (f.type == geom_filter::LAYER_NAME) {
layer_filter.include = f.include;
layer_filter.traverse = f.traverse;
layer_filter.populate(f.values);
} else if (f.type == geom_filter::ENTITY_ARG) {
attribute_filter.include = f.include;
attribute_filter.traverse = f.traverse;
attribute_filter.attribute_name = f.arg;
attribute_filter.populate(f.values);
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}
}
// If no entity names are specified these are the defaults to skip from output
if (entity_filter.entity_names.empty()) {
std::set<std::string> entities;
entities.insert("IfcSpace");
if (output_extension == ".svg") {
entity_filter.include = true;
} else {
entities.insert("IfcOpeningElement");
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}
entity_filter.entity_names = entities;
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}
if (!layer_filter.values.empty()) { filter_funcs.push_back(boost::ref(layer_filter)); }
if (!entity_filter.entity_names.empty()) { filter_funcs.push_back(boost::ref(entity_filter)); }
if (!attribute_filter.values.empty()) { filter_funcs.push_back(boost::ref(attribute_filter)); }
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return filter_funcs;
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}
namespace latebound_access {
template <typename T>
void set(IfcUtil::IfcBaseClass* inst, const std::string& attr, T t);
template <typename T>
void set_enumeration(IfcUtil::IfcBaseClass*, const std::string&, const IfcParse::enumeration_type*, T) {}
template <>
void set_enumeration(IfcUtil::IfcBaseClass* inst, const std::string& attr, const IfcParse::enumeration_type* enum_type, std::string t) {
std::vector<std::string>::const_iterator it = std::find(
enum_type->enumeration_items().begin(),
enum_type->enumeration_items().end(),
t);
return set(inst, attr, IfcWrite::IfcWriteArgument::EnumerationReference(it - enum_type->enumeration_items().begin(), it->c_str()));
}
template <typename T>
void set(IfcUtil::IfcBaseClass* inst, const std::string& attr, T t) {
auto decl = inst->declaration().as_entity();
auto i = decl->attribute_index(attr);
auto attr_type = decl->attribute_by_index(i)->type_of_attribute();
if (attr_type->as_named_type() && attr_type->as_named_type()->declared_type()->as_enumeration_type() && !std::is_same<T, IfcWrite::IfcWriteArgument::EnumerationReference>::value) {
set_enumeration(inst, attr, attr_type->as_named_type()->declared_type()->as_enumeration_type(), t);
} else {
IfcWrite::IfcWriteArgument* a = new IfcWrite::IfcWriteArgument;
a->set(t);
inst->data().attributes()[i] = a;
}
}
IfcUtil::IfcBaseClass* create(IfcParse::IfcFile& f, const std::string& entity) {
auto decl = f.schema()->declaration_by_name(entity);
auto data = new IfcEntityInstanceData(decl);
auto inst = f.schema()->instantiate(data);
if (decl->is("IfcRoot")) {
IfcParse::IfcGlobalId guid;
latebound_access::set(inst, "GlobalId", (std::string) guid);
}
return f.addEntity(inst);
}
}
void fix_quantities(IfcParse::IfcFile& f, bool no_progress, bool quiet, bool stderr_progress) {
{
auto delete_reversed = [&f](const IfcEntityList::ptr& insts) {
if (!insts) {
return;
}
// Lists are traversed back to front as the list may be mutated when
// instances are removed from the grouping by type.
for (auto it = insts->end() - 1; it >= insts->begin(); --it) {
IfcUtil::IfcBaseClass* const inst = *it;
f.removeEntity(inst);
}
};
// Delete quantities
auto quantities = f.instances_by_type("IfcPhysicalQuantity");
if (quantities) {
quantities = quantities->filtered({ f.schema()->declaration_by_name("IfcPhysicalComplexQuantity") });
delete_reversed(quantities);
}
// Delete complexes
delete_reversed(f.instances_by_type("IfcPhysicalComplexQuantity"));
auto element_quantities = f.instances_by_type("IfcElementQuantity");
// Capture relationship nodes
std::vector<IfcUtil::IfcBaseClass*> relationships;
auto IfcRelDefinesByProperties = f.schema()->declaration_by_name("IfcRelDefinesByProperties");
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if (element_quantities) {
for (auto& eq : *element_quantities) {
auto rels = eq->data().getInverse(IfcRelDefinesByProperties, -1);
for (auto& rel : *rels) {
relationships.push_back(rel);
}
}
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// Delete element quantities
delete_reversed(element_quantities);
}
// Delete relationship nodes
for (auto& rel : relationships) {
f.removeEntity(rel);
}
}
IfcGeom::IteratorSettings settings;
settings.set(IfcGeom::IteratorSettings::USE_WORLD_COORDS, false);
settings.set(IfcGeom::IteratorSettings::WELD_VERTICES, false);
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settings.set(IfcGeom::IteratorSettings::SEW_SHELLS, true);
settings.set(IfcGeom::IteratorSettings::CONVERT_BACK_UNITS, true);
settings.set(IfcGeom::IteratorSettings::DISABLE_TRIANGULATION, true);
IfcGeom::Iterator<double> context_iterator(settings, &f);
if (!context_iterator.initialize()) {
return;
}
size_t num_created = 0;
int old_progress = quiet ? 0 : -1;
auto person = latebound_access::create(f, "IfcPerson");
latebound_access::set(person, "FamilyName", std::string("IfcOpenShell"));
latebound_access::set(person, "GivenName", std::string("IfcOpenShell"));
auto org = latebound_access::create(f, "IfcOrganization");
latebound_access::set(org, "Name", std::string("IfcOpenShell"));
auto pando = latebound_access::create(f, "IfcPersonAndOrganization");
latebound_access::set(pando, "ThePerson", person);
latebound_access::set(pando, "TheOrganization", org);
auto application = latebound_access::create(f, "IfcApplication");
latebound_access::set(application, "ApplicationDeveloper", org);
latebound_access::set(application, "Version", std::string(IFCOPENSHELL_VERSION));
latebound_access::set(application, "ApplicationFullName", std::string("IfcConvert"));
latebound_access::set(application, "ApplicationIdentifier", std::string("IfcConvert" IFCOPENSHELL_VERSION));
auto ownerhist = latebound_access::create(f, "IfcOwnerHistory");
latebound_access::set(ownerhist, "OwningUser", pando);
latebound_access::set(ownerhist, "OwningApplication", application);
latebound_access::set(ownerhist, "ChangeAction", std::string("MODIFIED"));
latebound_access::set(ownerhist, "CreationDate", (int)time(0));
IfcUtil::IfcBaseClass* quantity = nullptr;
IfcEntityList::ptr objects;
boost::shared_ptr<IfcGeom::Representation::BRep> previous_geometry_pointer;
for (;; ++num_created) {
bool has_more = true;
if (num_created) {
has_more = context_iterator.next();
}
IfcGeom::BRepElement<double>* geom_object = nullptr;
if (has_more) {
geom_object = context_iterator.get_native();
}
if (geom_object && geom_object->geometry_pointer() == previous_geometry_pointer) {
objects->push(geom_object->product());
} else {
if (quantity) {
auto rel = latebound_access::create(f, "IfcRelDefinesByProperties");
latebound_access::set(rel, "OwnerHistory", ownerhist);
latebound_access::set(rel, "RelatedObjects", objects);
latebound_access::set(rel, "RelatingPropertyDefinition", quantity);
}
if (!geom_object) {
break;
}
IfcEntityList::ptr quantities(new IfcEntityList);
double a, b, c;
if (geom_object->geometry().calculate_surface_area(a)) {
auto quantity_area = latebound_access::create(f, "IfcQuantityArea");
latebound_access::set(quantity_area, "Name", std::string("Total Surface Area"));
latebound_access::set(quantity_area, "AreaValue", a);
quantities->push(quantity_area);
}
if (geom_object->geometry().calculate_volume(a)) {
auto quantity_volume = latebound_access::create(f, "IfcQuantityVolume");
latebound_access::set(quantity_volume, "Name", std::string("Volume"));
latebound_access::set(quantity_volume, "VolumeValue", a);
quantities->push(quantity_volume);
}
if (geom_object->calculate_projected_surface_area(a, b, c)) {
auto quantity_area = latebound_access::create(f, "IfcQuantityArea");
latebound_access::set(quantity_area, "Name", std::string("Footprint Area"));
latebound_access::set(quantity_area, "AreaValue", c);
quantities->push(quantity_area);
}
auto quantity_complex = latebound_access::create(f, "IfcPhysicalComplexQuantity");
latebound_access::set(quantity_complex, "Name", std::string("Shape Validation Properties"));
quantities->push(quantity_complex);
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IfcEntityList::ptr quantities_2(new IfcEntityList);
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for (auto& part : geom_object->geometry()) {
auto quantity_count = latebound_access::create(f, "IfcQuantityCount");
latebound_access::set(quantity_count, "Name", std::string("Surface Genus"));
latebound_access::set(quantity_count, "Description", '#' + boost::lexical_cast<std::string>(part.ItemId()));
latebound_access::set(quantity_count, "CountValue", IfcGeom::Kernel::surface_genus(part.Shape()));
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quantities_2->push(quantity_count);
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}
latebound_access::set(quantity_complex, "HasQuantities", quantities_2);
if (quantities->size()) {
quantity = latebound_access::create(f, "IfcElementQuantity");
latebound_access::set(quantity, "OwnerHistory", ownerhist);
latebound_access::set(quantity, "Quantities", quantities);
}
objects.reset(new IfcEntityList);
objects->push(geom_object->product());
}
previous_geometry_pointer = geom_object->geometry_pointer();
if (!no_progress) {
if (quiet) {
const int progress = context_iterator.progress();
for (; old_progress < progress; ++old_progress) {
std::cout << ".";
if (stderr_progress)
std::cerr << ".";
}
std::cout << std::flush;
if (stderr_progress)
std::cerr << std::flush;
} else {
const int progress = context_iterator.progress() / 2;
if (old_progress != progress) Logger::ProgressBar(progress);
old_progress = progress;
}
}
}
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if (!no_progress && quiet) {
for (; old_progress < 100; ++old_progress) {
std::cout << ".";
if (stderr_progress)
std::cerr << ".";
}
std::cout << std::flush;
if (stderr_progress)
std::cerr << std::flush;
} else {
Logger::Status("\rDone writing quantities for " + boost::lexical_cast<std::string>(num_created) +
" objects ");
}
}