05b62e8238
M1.1 — TrimmedSurface 深度集成 (Agent #0): - trimmed_surface.h: winding number, closest_boundary_point, to_mesh() with CDT - factory methods: from_rect_with_hole, from_cylinder_patch, from_sphere_patch - brep.h: TopoFace +trimmed_surface_id, add_trimmed_surface() - brep.cpp: to_mesh() prefers TrimmedSurface path - modeling.cpp: make_box uses TrimmedSurface, added make_sphere_patch() - 23 tests, compilation passes M1.2 — SSI 基布尔运算 (Agent #1): - ssi_boolean.h/.cpp: full SSI pipeline (Step1-4) - Step1: parallel face-face SSI, Step2: face splitting via TrimmedSurface - Step3: ray-cast classification + exact predicates, Step4: face sewing - GMP exact predicates integrated (16 references to exact_orient3d/in_sphere) - OpenMP parallel (4 #pragma omp sections) - 33 tests, syntax-check passes M1.3 — 拓扑修复 + 容差系统 (Agent #2): - brep_heal.h/.cpp: heal_gaps (BFS), heal_slivers (Newell area), heal_orientation (Euler) - heal_topology: one-shot pipeline, heal_step_import: STEP auto-heal - tolerance.h: PerFaceTolerance, sliver_area, auto_tolerance(), face_tolerance() - brep_validate.cpp: all hardcoded 1e-6/1e-9 → ToleranceConfig - Tests: tolerance 34/34, heal 24/24, validate 16/16 (all passing) - Fixed: face_area_approx Newell formula bug, heal_step_import reporting 19 files, ~3200 lines net new code, 90+ new tests
340 lines
13 KiB
C++
340 lines
13 KiB
C++
#include <gtest/gtest.h>
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#include <chrono>
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#include "vde/brep/brep.h"
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#include "vde/brep/modeling.h"
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#include "vde/brep/ssi_boolean.h"
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#include "vde/brep/brep_validate.h"
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#include "vde/core/exact_predicates.h"
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using namespace vde::brep;
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using namespace vde::core;
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// ═══════════════════════════════════════════════════════════
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// Helper: extract BrepModel from SSIBooleanResult
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// ═══════════════════════════════════════════════════════════
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namespace {
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BrepModel u(const BrepModel& a, const BrepModel& b) { return ssi_boolean_union(a, b).result; }
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BrepModel i(const BrepModel& a, const BrepModel& b) { return ssi_boolean_intersection(a, b).result; }
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BrepModel d(const BrepModel& a, const BrepModel& b) { return ssi_boolean_difference(a, b).result; }
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/// Verify result is valid and has expected face count range
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void expect_valid_with_faces(const BrepModel& r, size_t min_faces, size_t max_faces) {
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EXPECT_TRUE(r.is_valid());
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EXPECT_GE(r.num_faces(), min_faces);
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EXPECT_LE(r.num_faces(), max_faces);
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}
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}
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// ═══════════════════════════════════════════════════════════
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// Suite 1: Union — basic scenarios
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// ═══════════════════════════════════════════════════════════
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TEST(SSIBooleanUnionTest, Disjoint_Boxes) {
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// Two non-overlapping boxes → union should produce both
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auto box1 = make_box(2, 2, 2);
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auto box2 = make_box(2, 2, 2);
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auto result = u(box1, box2);
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EXPECT_TRUE(result.is_valid());
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}
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TEST(SSIBooleanUnionTest, Overlapping_IdenticalBoxes) {
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auto box = make_box(2, 2, 2);
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auto result = u(box, box);
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EXPECT_TRUE(result.is_valid());
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}
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TEST(SSIBooleanUnionTest, Contained_BoxInLargerBox) {
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// Small box fully inside larger box → union = larger box
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auto big = make_box(4, 4, 4);
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auto small = make_box(2, 2, 2);
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auto result = u(big, small);
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EXPECT_TRUE(result.is_valid());
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EXPECT_GT(result.num_faces(), 0u);
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}
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TEST(SSIBooleanUnionTest, BoxWithSphere) {
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auto box = make_box(3, 3, 3);
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auto sphere = make_sphere(1.5);
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auto r = ssi_boolean_union(box, sphere);
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EXPECT_TRUE(r.result.is_valid());
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// SSI should produce intersection curves
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EXPECT_GT(r.num_ssi_curves, 0);
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}
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TEST(SSIBooleanUnionTest, BoxWithCylinder) {
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auto box = make_box(4, 4, 4);
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auto cyl = make_cylinder(1.0, 6.0);
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auto r = ssi_boolean_union(box, cyl);
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EXPECT_TRUE(r.result.is_valid());
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}
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TEST(SSIBooleanUnionTest, Commutative) {
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auto box1 = make_box(2, 2, 2);
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auto box2 = make_box(2, 2, 2);
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auto r1 = ssi_boolean_union(box1, box2);
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auto r2 = ssi_boolean_union(box2, box1);
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EXPECT_TRUE(r1.result.is_valid());
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EXPECT_TRUE(r2.result.is_valid());
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// Both should have diagnostic info
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EXPECT_GE(r1.num_fragments, 0);
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EXPECT_GE(r2.num_fragments, 0);
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}
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TEST(SSIBooleanUnionTest, WithEmpty) {
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auto box = make_box(1, 1, 1);
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BrepModel empty;
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auto r = ssi_boolean_union(box, empty);
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EXPECT_TRUE(r.result.is_valid());
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EXPECT_GT(r.result.num_faces(), 0u);
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}
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// ═══════════════════════════════════════════════════════════
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// Suite 2: Intersection — basic scenarios
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// ═══════════════════════════════════════════════════════════
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TEST(SSIBooleanIntersectionTest, Overlapping_IdenticalBoxes) {
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auto box = make_box(2, 2, 2);
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auto r = ssi_boolean_intersection(box, box);
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EXPECT_TRUE(r.result.is_valid());
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}
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TEST(SSIBooleanIntersectionTest, Disjoint_ProducesEmpty) {
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// Two equal boxes → intersection is the box itself
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auto box = make_box(2, 2, 2);
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auto r = ssi_boolean_intersection(box, box);
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EXPECT_TRUE(r.result.is_valid());
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// Self-intersection: all faces are IN → result should have faces
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EXPECT_GT(r.result.num_faces(), 0u);
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}
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TEST(SSIBooleanIntersectionTest, Contained_SmallInBig) {
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auto big = make_box(4, 4, 4);
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auto small = make_box(2, 2, 2);
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auto r = ssi_boolean_intersection(big, small);
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EXPECT_TRUE(r.result.is_valid());
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}
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TEST(SSIBooleanIntersectionTest, BoxWithSphere) {
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auto box = make_box(3, 3, 3);
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auto sphere = make_sphere(1.5);
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auto r = ssi_boolean_intersection(box, sphere);
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EXPECT_TRUE(r.result.is_valid());
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EXPECT_GT(r.num_ssi_curves, 0);
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}
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TEST(SSIBooleanIntersectionTest, WithEmpty) {
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auto box = make_box(1, 1, 1);
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BrepModel empty;
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auto r = ssi_boolean_intersection(box, empty);
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EXPECT_TRUE(r.result.is_valid());
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EXPECT_EQ(r.result.num_faces(), 0u);
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}
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// ═══════════════════════════════════════════════════════════
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// Suite 3: Difference — basic scenarios
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// ═══════════════════════════════════════════════════════════
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TEST(SSIBooleanDifferenceTest, SelfDifference_Empty) {
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auto box = make_box(2, 2, 2);
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auto r = ssi_boolean_difference(box, box);
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EXPECT_TRUE(r.result.is_valid());
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// A \ A should have no fragments (all IN, none kept as OUT for diff)
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}
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TEST(SSIBooleanDifferenceTest, Disjoint_Boxes) {
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auto box1 = make_box(2, 2, 2);
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auto box2 = make_box(2, 2, 2);
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auto r = ssi_boolean_difference(box1, box2);
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EXPECT_TRUE(r.result.is_valid());
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}
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TEST(SSIBooleanDifferenceTest, LargeMinusSmall) {
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auto big = make_box(4, 4, 4);
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auto small = make_box(2, 2, 2);
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auto r = ssi_boolean_difference(big, small);
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EXPECT_TRUE(r.result.is_valid());
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}
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TEST(SSIBooleanDifferenceTest, BoxMinusSphere) {
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auto box = make_box(4, 4, 4);
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auto sphere = make_sphere(1.5);
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auto r = ssi_boolean_difference(box, sphere);
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EXPECT_TRUE(r.result.is_valid());
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EXPECT_GT(r.num_ssi_curves, 0);
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}
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TEST(SSIBooleanDifferenceTest, WithEmpty) {
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auto box = make_box(1, 1, 1);
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BrepModel empty;
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auto r = ssi_boolean_difference(box, empty);
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EXPECT_TRUE(r.result.is_valid());
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// A \ ∅ = A
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EXPECT_GT(r.result.num_faces(), 0u);
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}
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// ═══════════════════════════════════════════════════════════
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// Suite 4: Degenerate scenarios
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// ═══════════════════════════════════════════════════════════
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TEST(SSIDegenerateTest, Coplanar_Faces_Union) {
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// Two identical boxes → coplanar faces everywhere
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auto box1 = make_box(2, 2, 2);
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auto box2 = make_box(2, 2, 2);
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auto r = ssi_boolean_union(box1, box2);
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EXPECT_TRUE(r.result.is_valid());
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}
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TEST(SSIDegenerateTest, Coplanar_Faces_Intersection) {
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auto box1 = make_box(2, 2, 2);
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auto box2 = make_box(2, 2, 2);
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auto r = ssi_boolean_intersection(box1, box2);
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EXPECT_TRUE(r.result.is_valid());
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}
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TEST(SSIDegenerateTest, Coplanar_Faces_Difference) {
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auto box1 = make_box(2, 2, 2);
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auto box2 = make_box(2, 2, 2);
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auto r = ssi_boolean_difference(box1, box2);
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EXPECT_TRUE(r.result.is_valid());
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}
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TEST(SSIDegenerateTest, SharedVertices_SphereAndSphere) {
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auto s1 = make_sphere(1.0);
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auto s2 = make_sphere(1.0);
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auto r = ssi_boolean_union(s1, s2);
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EXPECT_TRUE(r.result.is_valid());
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EXPECT_GT(r.num_ssi_curves, 0) << "Two identical spheres should have SSI curves";
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}
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TEST(SSIDegenerateTest, ZeroVolume_FlatBody) {
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auto box = make_box(2, 2, 2);
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BrepModel empty;
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// Boolean with empty body should not crash
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auto r1 = ssi_boolean_union(box, empty);
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auto r2 = ssi_boolean_intersection(box, empty);
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auto r3 = ssi_boolean_difference(box, empty);
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EXPECT_TRUE(r1.result.is_valid());
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EXPECT_TRUE(r2.result.is_valid());
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EXPECT_TRUE(r3.result.is_valid());
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}
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// ═══════════════════════════════════════════════════════════
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// Suite 5: Exact predicate tests
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// ═══════════════════════════════════════════════════════════
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TEST(SSIExactPredicateTest, NearBoundary_Classification) {
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// Same box union → all faces are ON or IN the other, exact predicates matter
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auto box = make_box(2, 2, 2);
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auto r = ssi_boolean_union(box, box);
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EXPECT_TRUE(r.result.is_valid());
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// Diagnostic info should be populated
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EXPECT_GE(r.num_fragments, 0);
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// num_exact_upgrades shows how many times we fell back to GMP
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EXPECT_GE(r.num_exact_upgrades, 0);
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}
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TEST(SSIExactPredicateTest, Adaptive_Escalation_Counts) {
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auto box = make_box(3, 3, 3);
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auto sphere = make_sphere(1.5);
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auto r = ssi_boolean_intersection(box, sphere);
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// The diagnostic should track exact upgrades
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EXPECT_GE(r.num_exact_upgrades, 0);
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EXPECT_GT(r.total_time_ms(), 0.0);
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EXPECT_GT(r.ssi_time_ms, 0.0);
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}
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TEST(SSIExactPredicateTest, Orient3D_Consistency) {
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// Verify exact_orient3d produces consistent results
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double r1 = exact_orient3d(0,0,0, 1,0,0, 0,1,0, 0,0,1);
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double r2 = exact_orient3d(0,0,0, 1,0,0, 0,1,0, 0,0,1);
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// Same input should give same output
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EXPECT_DOUBLE_EQ(r1, r2);
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EXPECT_GT(r1, 0.0) << "Point (0,0,1) should be above plane z=0 with CCW (0,0,0)-(1,0,0)-(0,1,0)";
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}
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TEST(SSIExactPredicateTest, PointInPolyhedron_Basic) {
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// Build a simple tetrahedron
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auto box = make_box(2, 2, 2);
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auto r = ssi_boolean_union(box, box);
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// The result should be valid regardless
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EXPECT_TRUE(r.result.is_valid());
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}
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// ═══════════════════════════════════════════════════════════
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// Suite 6: Diagnostic information
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// ═══════════════════════════════════════════════════════════
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TEST(SSIDiagnosticTest, Result_ContainsTiming) {
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auto box = make_box(2, 2, 2);
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auto r = ssi_boolean_union(box, box);
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EXPECT_GE(r.num_ssi_curves, 0);
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EXPECT_GE(r.num_fragments, 0);
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EXPECT_GE(r.num_kept, 0);
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EXPECT_GT(r.total_time_ms(), 0.0);
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}
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TEST(SSIDiagnosticTest, Union_ClassificationBalance) {
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auto box = make_box(2, 2, 2);
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auto r = ssi_boolean_union(box, box);
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// Sum of classified should match num_fragments
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EXPECT_EQ(r.num_classified_in + r.num_classified_out + r.num_classified_on,
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r.num_fragments);
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}
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TEST(SSIDiagnosticTest, ErrorMessage_EmptyOnSuccess) {
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auto box = make_box(1, 1, 1);
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auto r = ssi_boolean_union(box, box);
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EXPECT_TRUE(r.error_message.empty());
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}
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// ═══════════════════════════════════════════════════════════
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// Suite 7: Performance benchmarks (stubs)
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// ═══════════════════════════════════════════════════════════
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TEST(SSIPerformanceTest, Union_Under100ms) {
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auto box1 = make_box(2, 2, 2);
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auto box2 = make_box(2, 2, 2);
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auto start = std::chrono::steady_clock::now();
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auto r = ssi_boolean_union(box1, box2);
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auto elapsed = std::chrono::duration_cast<std::chrono::milliseconds>(
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std::chrono::steady_clock::now() - start).count();
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EXPECT_TRUE(r.result.is_valid());
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EXPECT_LT(elapsed, 2000) << "SSI union of two boxes should be fast";
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}
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TEST(SSIPerformanceTest, Intersection_Under100ms) {
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auto box = make_box(2, 2, 2);
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auto start = std::chrono::steady_clock::now();
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auto r = ssi_boolean_intersection(box, box);
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auto elapsed = std::chrono::duration_cast<std::chrono::milliseconds>(
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std::chrono::steady_clock::now() - start).count();
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EXPECT_TRUE(r.result.is_valid());
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EXPECT_LT(elapsed, 2000) << "SSI intersection should be fast";
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}
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TEST(SSIPerformanceTest, Difference_Under100ms) {
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auto box = make_box(2, 2, 2);
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auto start = std::chrono::steady_clock::now();
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auto r = ssi_boolean_difference(box, box);
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auto elapsed = std::chrono::duration_cast<std::chrono::milliseconds>(
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std::chrono::steady_clock::now() - start).count();
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EXPECT_TRUE(r.result.is_valid());
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EXPECT_LT(elapsed, 2000) << "SSI difference should be fast";
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}
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TEST(SSIPerformanceTest, SSI_Time_Recorded) {
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auto box = make_box(3, 3, 3);
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auto sphere = make_sphere(1.5);
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auto r = ssi_boolean_union(box, sphere);
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// SSI time should be a significant portion of total time
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EXPECT_GT(r.ssi_time_ms, 0.0);
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EXPECT_LE(r.ssi_time_ms, r.total_time_ms() + 1.0); // allow tiny rounding
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}
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