Phase 4a — newton_solver.hpp:
- newton_euclidean(): SimplicialLDLT on H (PSD); solves H·Δx = −G
- newton_spherical(): SimplicialLDLT on −H (NSD→PSD); solves (−H)·Δx = G
- Backtracking line search (halving α up to 20×) for global convergence
- NewtonResult struct: x, iterations, grad_inf_norm, converged
- 7 tests: 4 spherical (convergence, few iters, large perturbation,
field consistency) + 3 Euclidean (triangle pinned, quad pinned,
mixed pinned — all with natural-theta equilibrium at x=0)
Phase 4b — mesh_io.hpp:
- read_mesh() / write_mesh(): CGAL::IO::read/write_polygon_mesh wrappers
- load_mesh() / save_mesh(): throwing convenience versions
- Supports OFF, OBJ, PLY (format detected by file extension)
- 6 tests: OFF round-trip (tet + quad), OBJ round-trip, missing-file throw,
vertex-position preservation, save/load convenience wrappers
All 75 cgal tests pass (3 skipped as before).
Co-Authored-By: Claude Sonnet 4.5 <noreply@anthropic.com>
171 lines
6.8 KiB
C++
171 lines
6.8 KiB
C++
// test_mesh_io.cpp
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//
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// Phase 4b — CGAL::IO mesh round-trip tests.
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//
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// Tests:
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// 1. OFF write + read round-trip: vertex count, face count, edge count preserved.
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// 2. OBJ write + read round-trip: same topology checks.
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// 3. load_mesh() throws on non-existent file.
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// 4. Round-trip preserves vertex positions (within floating-point precision).
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#include "conformal_mesh.hpp"
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#include "mesh_builder.hpp"
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#include "mesh_io.hpp"
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#include <gtest/gtest.h>
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#include <cmath>
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#include <cstdio>
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#include <filesystem>
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#include <stdexcept>
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using namespace conformallab;
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// Helper: temp file path with given extension
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static std::string tmp_path(const char* ext)
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{
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return std::string("/tmp/conformallab_test.") + ext;
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}
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// Helper: delete file if it exists
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static void rm(const std::string& path)
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{
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std::filesystem::remove(path);
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}
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// ════════════════════════════════════════════════════════════════════════════
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// OFF round-trip: tetrahedron
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// ════════════════════════════════════════════════════════════════════════════
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TEST(MeshIO, OFF_RoundTrip_Tetrahedron)
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{
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auto path = tmp_path("off");
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rm(path);
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auto mesh_out = make_tetrahedron();
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ASSERT_TRUE(write_mesh(path, mesh_out))
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<< "write_mesh should succeed for tetrahedron";
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ConformalMesh mesh_in;
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ASSERT_TRUE(read_mesh(path, mesh_in))
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<< "read_mesh should succeed for the written OFF file";
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EXPECT_EQ(mesh_in.number_of_vertices(), mesh_out.number_of_vertices());
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EXPECT_EQ(mesh_in.number_of_faces(), mesh_out.number_of_faces());
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EXPECT_EQ(mesh_in.number_of_edges(), mesh_out.number_of_edges());
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rm(path);
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}
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// ════════════════════════════════════════════════════════════════════════════
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// OFF round-trip: quad strip
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// ════════════════════════════════════════════════════════════════════════════
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TEST(MeshIO, OFF_RoundTrip_QuadStrip)
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{
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auto path = tmp_path("off");
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rm(path);
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auto mesh_out = make_quad_strip();
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ASSERT_TRUE(write_mesh(path, mesh_out));
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ConformalMesh mesh_in;
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ASSERT_TRUE(read_mesh(path, mesh_in));
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EXPECT_EQ(mesh_in.number_of_vertices(), mesh_out.number_of_vertices());
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EXPECT_EQ(mesh_in.number_of_faces(), mesh_out.number_of_faces());
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rm(path);
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}
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// ════════════════════════════════════════════════════════════════════════════
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// OBJ round-trip: tetrahedron
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// ════════════════════════════════════════════════════════════════════════════
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TEST(MeshIO, OBJ_RoundTrip_Tetrahedron)
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{
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auto path = tmp_path("obj");
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rm(path);
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auto mesh_out = make_tetrahedron();
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ASSERT_TRUE(write_mesh(path, mesh_out))
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<< "write_mesh (OBJ) should succeed";
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ConformalMesh mesh_in;
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ASSERT_TRUE(read_mesh(path, mesh_in))
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<< "read_mesh (OBJ) should succeed";
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EXPECT_EQ(mesh_in.number_of_vertices(), mesh_out.number_of_vertices());
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EXPECT_EQ(mesh_in.number_of_faces(), mesh_out.number_of_faces());
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rm(path);
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}
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// ════════════════════════════════════════════════════════════════════════════
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// load_mesh throws on missing file
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// ════════════════════════════════════════════════════════════════════════════
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TEST(MeshIO, LoadMeshThrowsOnMissingFile)
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{
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EXPECT_THROW(load_mesh("/tmp/does_not_exist_conflab.off"), std::runtime_error);
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}
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// ════════════════════════════════════════════════════════════════════════════
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// Vertex positions survive a round-trip (OFF)
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// ════════════════════════════════════════════════════════════════════════════
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TEST(MeshIO, OFF_VertexPositionsPreserved)
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{
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auto path = tmp_path("off");
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rm(path);
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auto mesh_out = make_tetrahedron();
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ASSERT_TRUE(write_mesh(path, mesh_out));
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ConformalMesh mesh_in;
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ASSERT_TRUE(read_mesh(path, mesh_in));
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// Collect and sort vertex positions from both meshes to compare
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auto collect_sorted = [](const ConformalMesh& m) {
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std::vector<std::array<double,3>> pts;
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for (auto v : m.vertices()) {
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auto p = m.point(v);
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pts.push_back({CGAL::to_double(p.x()),
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CGAL::to_double(p.y()),
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CGAL::to_double(p.z())});
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}
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std::sort(pts.begin(), pts.end());
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return pts;
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};
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auto pts_out = collect_sorted(mesh_out);
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auto pts_in = collect_sorted(mesh_in);
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ASSERT_EQ(pts_out.size(), pts_in.size());
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for (std::size_t i = 0; i < pts_out.size(); ++i) {
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EXPECT_NEAR(pts_out[i][0], pts_in[i][0], 1e-10);
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EXPECT_NEAR(pts_out[i][1], pts_in[i][1], 1e-10);
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EXPECT_NEAR(pts_out[i][2], pts_in[i][2], 1e-10);
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}
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rm(path);
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}
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// ════════════════════════════════════════════════════════════════════════════
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// save_mesh / load_mesh convenience wrappers
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// ════════════════════════════════════════════════════════════════════════════
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TEST(MeshIO, SaveLoadConvenienceWrappers)
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{
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auto path = tmp_path("off");
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rm(path);
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auto mesh_out = make_quad_strip();
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EXPECT_NO_THROW(save_mesh(path, mesh_out));
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ConformalMesh mesh_in;
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EXPECT_NO_THROW(mesh_in = load_mesh(path));
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EXPECT_EQ(mesh_in.number_of_vertices(), mesh_out.number_of_vertices());
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rm(path);
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}
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