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227 lines
5.9 KiB
C++
227 lines
5.9 KiB
C++
#include "taxonomy.h"
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using namespace ifcopenshell::geometry::taxonomy;
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namespace {
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bool compare(const trimmed_curve& a, const trimmed_curve& b);
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bool compare(const collection& a, const collection& b);
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template <typename T>
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bool compare(const eigen_base<T>& t, const eigen_base<T>& u) {
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auto t_begin = t.components->data();
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auto t_end = t.components->data() + t.components->size();
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auto u_begin = u.components->data();
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auto u_end = u.components->data() + u.components->size();
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return std::lexicographical_compare(t_begin, t_end, u_begin, u_end);
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}
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bool compare(const line& a, const line& b) {
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return compare(a.matrix, b.matrix);
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}
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bool compare(const plane& a, const plane& b) {
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return compare(a.matrix, b.matrix);
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}
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bool compare(const circle& a, const circle& b) {
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if (a.radius == b.radius) {
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return compare(a.matrix, b.matrix);
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}
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return a.radius < b.radius;
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}
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bool compare(const ellipse& a, const ellipse& b) {
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if (a.radius == b.radius && a.radius2 == b.radius2) {
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return compare(a.matrix, b.matrix);
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}
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return
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std::tie(a.radius, a.radius2) <
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std::tie(b.radius, b.radius2);
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}
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bool compare(const bspline_curve&, const bspline_curve&) {
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throw std::runtime_error("not implemented");
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}
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template <typename T>
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typename std::enable_if<std::is_base_of<item, T>::value, int>::type less_to_order(const T& a, const T& b) {
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const bool a_lt_b = compare(a, b);
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const bool b_lt_a = compare(b, a);
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return a_lt_b ?
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-1 : (!b_lt_a ? 0 : 1);
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}
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template <typename T>
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typename std::enable_if<!std::is_base_of<item, T>::value, int>::type less_to_order(const T& a, const T& b) {
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const bool a_lt_b = a < b;
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const bool b_lt_a = b < a;
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return a_lt_b ?
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-1 : (!b_lt_a ? 0 : 1);
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}
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template <typename T>
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int less_to_order_optional(const boost::optional<T>& a, const boost::optional<T>& b) {
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if (a && b) {
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return less_to_order(*a, *b);
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} else if (!a && !b) {
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return 0;
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} else if (a) {
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return 1;
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} else {
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return -1;
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}
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}
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int compare(const boost::variant<point3, double>& a, const boost::variant<point3, double>& b) {
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bool a_lt_b, b_lt_a;
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if (a.which() == 0) {
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a_lt_b = compare(boost::get<point3>(a), boost::get<point3>(b));
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b_lt_a = compare(boost::get<point3>(b), boost::get<point3>(a));
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} else {
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a_lt_b = std::less<double>()(boost::get<double>(a), boost::get<double>(b));
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b_lt_a = std::less<double>()(boost::get<double>(b), boost::get<double>(a));
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}
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return a_lt_b ?
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-1 : (!b_lt_a ? 0 : 1);
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}
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bool compare(const extrusion& a, const extrusion& b) {
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const int order[3] = {
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less_to_order(a.basis, b.basis),
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less_to_order(a.direction, b.direction),
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a.depth < b.depth ? -1 : (a.depth == b.depth ? 0 : 1)
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};
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// find the first non-zero integer.
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auto it = std::find_if(std::begin(order), std::end(order), [](int x) { return x; });
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if (it == std::end(order)) {
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// extrusions can have non-identity matrices
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//
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// @todo perhaps it's time for a dedicated transform
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// node and not on the abstract geom_item.
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return compare(a.matrix, b.matrix);
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}
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return *it == -1;
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}
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bool compare(const style& a, const style& b) {
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const int order[5] = {
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less_to_order_optional(a.name, b.name),
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less_to_order_optional(a.diffuse, b.diffuse),
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less_to_order_optional(a.specular, b.specular),
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less_to_order_optional(a.specularity, b.specularity),
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less_to_order_optional(a.transparency, b.transparency)
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};
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auto it = std::find_if(std::begin(order), std::end(order), [](int x) { return x; });
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if (it == std::end(order)) return false;
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return *it == -1;
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}
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/* A compile-time for loop over the taxonomy kinds */
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template <size_t N>
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struct dispatch_comparison {
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static bool dispatch(const item* a, const item* b) {
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if (N == a->kind() && N == b->kind()) {
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auto A = static_cast<const type_by_kind::type<N>*>(a);
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auto B = static_cast<const type_by_kind::type<N>*>(b);
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return compare(*A, *B);
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} else {
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return dispatch_comparison<N + 1>::dispatch(a, b);
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}
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}
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};
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template <>
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struct dispatch_comparison<type_by_kind::max> {
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static bool dispatch(const item*, const item*) {
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return false;
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}
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};
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}
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bool ifcopenshell::geometry::taxonomy::less(const item* a, const item* b) {
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if (a == b) {
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return false;
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}
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int a_kind = a->kind();
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int b_kind = b->kind();
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if (a_kind != b_kind) {
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return a_kind < b_kind;
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}
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return dispatch_comparison<0>::dispatch(a, b);
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}
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namespace {
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bool compare(const trimmed_curve& a, const trimmed_curve& b) {
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int a_which_start = a.start.which();
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int a_which_end = a.end.which();
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int b_which_start = b.start.which();
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int b_which_end = b.end.which();
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if (std::tie(a.orientation, a_which_start, a_which_end) ==
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std::tie(b.orientation, b_which_start, b_which_end)) {
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int start_state = compare(a.start, b.start);
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if (start_state == 0) {
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int end_state = compare(a.end, b.end);
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if (end_state == 0) {
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int a_has_basis = !!a.basis;
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int b_has_basis = !!a.basis;
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if (a_has_basis == b_has_basis) {
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if (!a_has_basis) {
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// Finally, equality
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return false;
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} else {
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return less(a.basis, b.basis);
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}
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} else {
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return a_has_basis < b_has_basis;
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}
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} else {
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return end_state == -1;
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}
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} else {
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return start_state == -1;
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}
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} else {
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return
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std::tie(a.orientation, a_which_start, a_which_end) <
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std::tie(b.orientation, b_which_start, b_which_end);
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}
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}
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bool compare(const collection& a, const collection& b) {
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if (a.children.size() == b.children.size()) {
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auto at = a.children.begin();
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auto bt = b.children.begin();
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for (; at != a.children.end(); ++at, ++bt) {
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const bool a_lt_b = less(*at, *bt);
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const bool b_lt_a = less(*bt, *at);
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if (!a_lt_b && !b_lt_a) {
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// Elements equal.
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continue;
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}
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return a_lt_b;
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}
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// Vectors equal, compare matrix (in case of mapped items).
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return compare(a.matrix, b.matrix);
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} else {
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return a.children.size() < b.children.size();
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}
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}
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} |