Files
IfcOpenShell/src/ifcconvert/XmlSerializer.cpp
T
Balleux Benjamin be3dbce9f4 feature (WIP) : retrieve full hierarchy
Bug : the element are not at the right location
2017-05-15 17:45:05 +02:00

407 lines
16 KiB
C++

/********************************************************************************
* *
* 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/>. *
* *
********************************************************************************/
#include <map>
#include <boost/property_tree/ptree.hpp>
#include <boost/property_tree/xml_parser.hpp>
#include <boost/version.hpp>
#include "XmlSerializer.h"
#include <algorithm>
#include "../ifcparse/IfcSIPrefix.h"
#include "../ifcgeom/IfcGeom.h"
using boost::property_tree::ptree;
using namespace IfcSchema;
namespace {
std::map<std::string, std::string> argument_name_map;
// Format an IFC attribute and maybe returns as string. Only literal scalar
// values are converted. Things like entity instances and lists are omitted.
boost::optional<std::string> format_attribute(const Argument* argument, IfcUtil::ArgumentType argument_type, const std::string& argument_name) {
boost::optional<std::string> value;
// Hard-code lat-lon as it represents an array
// of integers best emitted as a single decimal
if (argument_name == "IfcSite.RefLatitude" ||
argument_name == "IfcSite.RefLongitude")
{
std::vector<int> angle = *argument;
double deg;
if (angle.size() >= 3) {
deg = angle[0] + angle[1] / 60. + angle[2] / 3600.;
int prec = 8;
if (angle.size() == 4) {
deg += angle[3] / (1000000. * 3600.);
prec = 14;
}
std::stringstream stream;
stream << std::setprecision(prec) << deg;
value = stream.str();
}
return value;
}
switch(argument_type) {
case IfcUtil::Argument_BOOL: {
const bool b = *argument;
value = b ? "true" : "false";
break; }
case IfcUtil::Argument_DOUBLE: {
const double d = *argument;
std::stringstream stream;
stream << d;
value = stream.str();
break; }
case IfcUtil::Argument_STRING:
case IfcUtil::Argument_ENUMERATION: {
value = static_cast<std::string>(*argument);
break; }
case IfcUtil::Argument_INT: {
const int v = *argument;
std::stringstream stream;
stream << v;
value = stream.str();
break; }
case IfcUtil::Argument_ENTITY_INSTANCE: {
IfcUtil::IfcBaseClass* e = *argument;
if (Type::IsSimple(e->type())) {
IfcUtil::IfcBaseType* f = (IfcUtil::IfcBaseType*) e;
value = format_attribute(f->getArgument(0), f->getArgumentType(0), argument_name);
} else if (e->is(IfcSchema::Type::IfcSIUnit) || e->is(IfcSchema::Type::IfcConversionBasedUnit)) {
// Some string concatenation to have a unit name as a XML attribute.
std::string unit_name;
if (e->is(IfcSchema::Type::IfcSIUnit)) {
IfcSchema::IfcSIUnit* unit = (IfcSchema::IfcSIUnit*) e;
unit_name = IfcSchema::IfcSIUnitName::ToString(unit->Name());
if (unit->hasPrefix()) {
unit_name = IfcSchema::IfcSIPrefix::ToString(unit->Prefix()) + unit_name;
}
} else {
IfcSchema::IfcConversionBasedUnit* unit = (IfcSchema::IfcConversionBasedUnit*) e;
unit_name = unit->Name();
}
value = unit_name;
} else if (e->is(IfcSchema::Type::IfcLocalPlacement)) {
IfcSchema::IfcLocalPlacement* placement = e->as<IfcSchema::IfcLocalPlacement>();
gp_Trsf trsf;
IfcGeom::Kernel kernel;
if (kernel.convert(placement, trsf)) {
std::stringstream stream;
for (int i = 1; i < 5; ++i) {
for (int j = 1; j < 4; ++j) {
const double trsf_value = trsf.Value(j, i);
stream << trsf_value << " ";
}
stream << ((i == 4) ? "1" : "0 ");
}
value = stream.str();
}
}
break; }
default:
break;
}
return value;
}
// Appends to a node with possibly existing attributes
ptree& format_entity_instance(IfcUtil::IfcBaseEntity* instance, ptree& child, ptree& tree, bool as_link = false) {
const unsigned n = instance->getArgumentCount();
for (unsigned i = 0; i < n; ++i) {
const Argument* argument = instance->getArgument(i);
if (argument->isNull()) continue;
std::string argument_name = instance->getArgumentName(i);
std::map<std::string, std::string>::const_iterator argument_name_it;
argument_name_it = argument_name_map.find(argument_name);
if (argument_name_it != argument_name_map.end()) {
argument_name = argument_name_it->second;
}
const IfcUtil::ArgumentType argument_type = instance->getArgumentType(i);
const std::string qualified_name = IfcSchema::Type::ToString(instance->type()) + "." + argument_name;
boost::optional<std::string> value;
try {
value = format_attribute(argument, argument_type, qualified_name);
} catch (...) {}
if (value) {
if (as_link) {
if (argument_name == "id") {
child.put("<xmlattr>.xlink:href", std::string("#") + *value);
}
} else {
std::stringstream stream;
stream << "<xmlattr>." << argument_name;
child.put(stream.str(), *value);
}
}
}
return tree.add_child(Type::ToString(instance->type()), child);
}
// Formats an entity instances as a ptree node, and insert into the DOM. Recurses
// over the entity attributes and writes them as xml attributes of the node.
ptree& format_entity_instance(IfcUtil::IfcBaseEntity* instance, ptree& tree, bool as_link = false) {
ptree child;
return format_entity_instance(instance, child, tree, as_link);
}
// A function to be called recursively. Template specialization is used
// to descend into decomposition, containment and property relationships.
template <typename A>
ptree& descend(A* instance, ptree& tree) {
if (instance->is(IfcSchema::Type::IfcObjectDefinition)) {
return descend(instance->template as<IfcSchema::IfcObjectDefinition>(), tree);
} else {
return format_entity_instance(instance, tree);
}
}
// Returns related entity instances using IFC's objectified relationship
// model. The second and third argument require a member function pointer.
template <typename T, typename U, typename V, typename F, typename G>
typename V::list::ptr get_related(T* t, F f, G g) {
typename U::list::ptr li = (*t.*f)()->template as<U>();
typename V::list::ptr acc(new typename V::list);
for (typename U::list::it it = li->begin(); it != li->end(); ++it) {
U* u = *it;
acc->push((*u.*g)()->template as<V>());
}
return acc;
}
// Descends into the tree by recursing into IfcRelContainedInSpatialStructure,
// IfcRelDecomposes, IfcRelDefinesByType, IfcRelDefinesByProperties relations.
template <>
ptree& descend(IfcObjectDefinition* product, ptree& tree) {
ptree& child = format_entity_instance(product, tree);
if (product->is(Type::IfcSpatialStructureElement)) {
IfcSpatialStructureElement* structure = (IfcSpatialStructureElement*) product;
IfcObjectDefinition::list::ptr elements = get_related
<IfcSpatialStructureElement, IfcRelContainedInSpatialStructure, IfcObjectDefinition>
(structure, &IfcSpatialStructureElement::ContainsElements, &IfcRelContainedInSpatialStructure::RelatedElements);
for (IfcObjectDefinition::list::it it = elements->begin(); it != elements->end(); ++it) {
descend(*it, child);
}
}
if (product->is(Type::IfcElement)) {
IfcElement* element = static_cast<IfcElement*>(product);
IfcOpeningElement::list::ptr openings = get_related<IfcElement, IfcRelVoidsElement, IfcOpeningElement>(
element, &IfcElement::HasOpenings, &IfcRelVoidsElement::RelatedOpeningElement);
for (IfcOpeningElement::list::it it = openings->begin(); it != openings->end(); ++it) {
descend(*it, child);
}
}
#ifndef USE_IFC4
IfcObjectDefinition::list::ptr structures = get_related
<IfcObjectDefinition, IfcRelDecomposes, IfcObjectDefinition>
(product, &IfcObjectDefinition::IsDecomposedBy, &IfcRelDecomposes::RelatedObjects);
#else
IfcObjectDefinition::list::ptr structures = get_related
<IfcObjectDefinition, IfcRelAggregates, IfcObjectDefinition>
(product, &IfcProduct::IsDecomposedBy, &IfcRelAggregates::RelatedObjects);
#endif
for (IfcObjectDefinition::list::it it = structures->begin(); it != structures->end(); ++it) {
IfcObjectDefinition* ob = *it;
descend(ob, child);
}
if (product->is(IfcSchema::Type::IfcObject)) {
IfcSchema::IfcObject* object = product->as<IfcSchema::IfcObject>();
IfcPropertySetDefinition::list::ptr property_sets = get_related
<IfcObject, IfcRelDefinesByProperties, IfcPropertySetDefinition>
(object, &IfcObject::IsDefinedBy, &IfcRelDefinesByProperties::RelatingPropertyDefinition);
for (IfcPropertySetDefinition::list::it it = property_sets->begin(); it != property_sets->end(); ++it) {
IfcPropertySetDefinition* pset = *it;
if (pset->is(Type::IfcPropertySet)) {
format_entity_instance(pset, child, true);
}
}
#ifdef USE_IFC4
IfcTypeObject::list::ptr types = get_related
<IfcObject, IfcRelDefinesByType, IfcTypeObject>
(object, &IfcObject::IsTypedBy, &IfcRelDefinesByType::RelatingType);
#else
IfcTypeObject::list::ptr types = get_related
<IfcObject, IfcRelDefinesByType, IfcTypeObject>
(object, &IfcObject::IsDefinedBy, &IfcRelDefinesByType::RelatingType);
#endif
for (IfcTypeObject::list::it it = types->begin(); it != types->end(); ++it) {
IfcTypeObject* type = *it;
format_entity_instance(type, child, true);
}
}
if (product->is(Type::IfcProduct)) {
std::map<std::string, IfcPresentationLayerAssignment*> layers = IfcGeom::Kernel::get_layers(product->as<IfcProduct>());
for (std::map<std::string, IfcPresentationLayerAssignment*>::const_iterator it = layers.begin(); it != layers.end(); ++it) {
// IfcPresentationLayerAssignments don't have GUIDs (only optional Identifier) so use name as the ID.
// Note that the IfcPresentationLayerAssignment passed here doesn't really matter as as_link is true
// for the format_entity_instance() call.
ptree node;
node.put("<xmlattr>.xlink:href", "#" + it->first);
format_entity_instance(it->second, node, child, true);
}
}
return child;
}
// Format IfcProperty instances and insert into the DOM. IfcComplexProperties are flattened out.
void format_properties(IfcProperty::list::ptr properties, ptree& node) {
for (IfcProperty::list::it it = properties->begin(); it != properties->end(); ++it) {
IfcProperty* p = *it;
if (p->is(Type::IfcComplexProperty)) {
IfcComplexProperty* complex = (IfcComplexProperty*) p;
format_properties(complex->HasProperties(), node);
} else {
format_entity_instance(p, node);
}
}
}
} // ~unnamed namespace
void XmlSerializer::finalize() {
argument_name_map.insert(std::make_pair("GlobalId", "id"));
IfcProject::list::ptr projects = file->entitiesByType<IfcProject>();
if (projects->size() != 1) {
Logger::Message(Logger::LOG_ERROR, "Expected a single IfcProject");
return;
}
IfcProject* project = *projects->begin();
ptree root, header, units, decomposition, properties, types, layers;
// Write the SPF header as XML nodes.
foreach(const std::string& s, file->header().file_description().description()) {
header.add_child("file_description.description", ptree(s));
}
foreach(const std::string& s, file->header().file_name().author()) {
header.add_child("file_name.author", ptree(s));
}
foreach(const std::string& s, file->header().file_name().organization()) {
header.add_child("file_name.organization", ptree(s));
}
foreach(const std::string& s, file->header().file_schema().schema_identifiers()) {
header.add_child("file_schema.schema_identifiers", ptree(s));
}
header.put("file_description.implementation_level", file->header().file_description().implementation_level());
header.put("file_name.name", file->header().file_name().name());
header.put("file_name.time_stamp", file->header().file_name().time_stamp());
header.put("file_name.preprocessor_version", file->header().file_name().preprocessor_version());
header.put("file_name.originating_system", file->header().file_name().originating_system());
header.put("file_name.authorization", file->header().file_name().authorization());
// Descend into the decomposition structure of the IFC file.
descend(project, decomposition);
// Write all property sets and values as XML nodes.
IfcPropertySet::list::ptr psets = file->entitiesByType<IfcPropertySet>();
for (IfcPropertySet::list::it it = psets->begin(); it != psets->end(); ++it) {
IfcPropertySet* pset = *it;
ptree& node = format_entity_instance(pset, properties);
format_properties(pset->HasProperties(), node);
}
// Write all type objects as XML nodes.
IfcTypeObject::list::ptr type_objects = file->entitiesByType<IfcTypeObject>();
for (IfcTypeObject::list::it it = type_objects->begin(); it != type_objects->end(); ++it) {
IfcTypeObject* type_object = *it;
ptree& node = descend(type_object, types);
// ptree& node = format_entity_instance(type_object, types);
if (type_object->hasHasPropertySets()) {
IfcPropertySetDefinition::list::ptr property_sets = type_object->HasPropertySets();
for (IfcPropertySetDefinition::list::it jt = property_sets->begin(); jt != property_sets->end(); ++jt) {
IfcPropertySetDefinition* pset = *jt;
if (pset->is(Type::IfcPropertySet)) {
format_entity_instance(pset, node, true);
}
}
}
}
// Write all assigned units as XML nodes.
IfcEntityList::ptr unit_assignments = project->UnitsInContext()->Units();
for (IfcEntityList::it it = unit_assignments->begin(); it != unit_assignments->end(); ++it) {
if ((*it)->is(IfcSchema::Type::IfcNamedUnit)) {
IfcSchema::IfcNamedUnit* named_unit = (*it)->as<IfcSchema::IfcNamedUnit>();
ptree& node = format_entity_instance(named_unit, units);
node.put("<xmlattr>.SI_equivalent", IfcParse::get_SI_equivalent(named_unit));
} else if ((*it)->is(IfcSchema::Type::IfcMonetaryUnit)) {
format_entity_instance((*it)->as<IfcSchema::IfcMonetaryUnit>(), units);
}
}
// Layer assignments. IfcPresentationLayerAssignments don't have GUIDs (only optional Identifier)
// so use names as the IDs and only insert those with unique names. In case of possible duplicate names/IDs
// the first IfcPresentationLayerAssignment occurence takes precedence.
std::set<std::string> layer_names;
IfcPresentationLayerAssignment::list::ptr layer_assignments = file->entitiesByType<IfcPresentationLayerAssignment>();
for (IfcPresentationLayerAssignment::list::it it = layer_assignments->begin(); it != layer_assignments->end(); ++it) {
const std::string& name = (*it)->Name();
if (layer_names.find(name) == layer_names.end()) {
layer_names.insert(name);
ptree node;
node.put("<xmlattr>.id", name);
format_entity_instance(*it, node, layers);
}
}
root.add_child("ifc.header", header);
root.add_child("ifc.units", units);
root.add_child("ifc.properties", properties);
root.add_child("ifc.types", types);
root.add_child("ifc.layers", layers);
root.add_child("ifc.decomposition", decomposition);
root.put("ifc.<xmlattr>.xmlns:xlink", "http://www.w3.org/1999/xlink");
#if BOOST_VERSION >= 105600
boost::property_tree::xml_writer_settings<ptree::key_type> settings = boost::property_tree::xml_writer_make_settings<ptree::key_type>('\t', 1);
#else
boost::property_tree::xml_writer_settings<char> settings('\t', 1);
#endif
boost::property_tree::write_xml(xml_filename, root, std::locale(), settings);
}