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ConformalLabpp/code/include/fundamental_domain.hpp
Tarik Moussa e7dfaed56c feat(phase7): Java-parity layout — priority BFS, halfedge_uv, Möbius holonomy, period matrix, fundamental domain — 158 tests
Phase 7 adds seven features ported from the original Java ConformalLab:

  layout.hpp
  - Priority BFS (min-heap on BFS depth) replaces FIFO queue, minimising
    trilateration error accumulation from the root face outward.
  - MobiusMap struct: T(z)=(az+b)/(cz+d), identity/inverse/compose,
    from_three (3×3 complex least-squares fit), apply(Vector2d).
  - halfedge_uv[h.idx()] = UV of source(h) in face(h); seam halfedges
    carry the virtual unfolded position, enabling proper GPU texture atlases.
  - Hyperbolic holonomy stored as MobiusMap per cut edge (SU(1,1) isometry).
  - best_root_face: largest 3-D area face, 1.5× interior bonus.
  - normalise_euclidean also transforms halfedge_uv (centroid + PCA).
  - Face-area-weighted iterative Möbius centering (Fréchet mean, Phase 7).

  period_matrix.hpp  (new)
  - PeriodData: lattice generators ω_i as complex numbers, τ = ω₂/ω₁ ∈ ℍ.
  - reduce_to_fundamental_domain: SL(2,ℤ) reduction via alternating S/T steps.
  - is_in_fundamental_domain, compute_period_matrix.
  - NOTE: Siegel matrix Ω for genus g>1 intentionally deferred.

  fundamental_domain.hpp  (new)
  - FundamentalDomain: CCW parallelogram {0, ω₁, ω₁+ω₂, ω₂} for genus 1.
  - edge_identifications, generators stored.
  - 4g-polygon boundary-walk for g>1 marked TODO(Phase 8) with full algorithm
    outline and literature references.
  - tiling_copy / tiling_neighbourhood for universal cover visualisation.

  Tests: 121 → 158 (+37 Phase 7 tests covering all new features).

Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
2026-05-13 07:57:13 +02:00

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#pragma once
// fundamental_domain.hpp
//
// Phase 7 — Fundamental domain polygon for closed surfaces.
//
// For a closed genus-g surface cut open via a CutGraph + Euclidean layout:
//
// The universal cover is tiled by copies of the cut-open disk.
// The fundamental domain is the polygon whose sides are identified in pairs
// by the holonomy generators.
//
// ─── Genus-1 (flat torus) ────────────────────────────────────────────────────
//
// Parallelogram with vertices 0, ω_1, ω_1 + ω_2, ω_2.
// The four edges are identified in pairs:
// bottom (0 → ω_1) ≡ top (ω_2 → ω_1 + ω_2) — translation ω_2
// left (0 → ω_2) ≡ right (ω_1 → ω_1 + ω_2) — translation ω_1
//
// ─── Genus g > 1 (general) ──────────────────────────────────────────────────
//
// The standard 4g-polygon with sides labelled a_1 b_1 a_1^{-1} b_1^{-1} ...
// can be recovered from the layout boundary, but requires walking the
// boundary of the cut-open mesh — not yet implemented (see note below).
//
// For now, this file provides the genus-1 parallelogram only.
// The polygon vertices for genus-1 are computed from the holonomy generators.
//
// ─── API ─────────────────────────────────────────────────────────────────────
//
// FundamentalDomain fd = compute_fundamental_domain_genus1(holonomy);
// fd.vertices — 2D polygon corners (size = 4 for genus-1)
// fd.edge_identifications — pairs (i, j) meaning edge i is identified with j
// fd.is_valid() — true if genus == 1 and data makes sense
#include "layout.hpp"
#include "period_matrix.hpp"
#include <vector>
#include <utility>
namespace conformallab {
// ─────────────────────────────────────────────────────────────────────────────
// FundamentalDomain
// ─────────────────────────────────────────────────────────────────────────────
struct FundamentalDomain {
/// Polygon corners in order (CCW). Size = 4 for genus-1.
std::vector<Eigen::Vector2d> vertices;
/// edge_identifications[k] = (i, j) means the edge from vertices[i] to
/// vertices[(i+1) % n] is identified with the edge from vertices[j] to
/// vertices[(j+1) % n] (with matching orientation).
std::vector<std::pair<int, int>> edge_identifications;
/// Holonomy generators (one per identified edge pair).
/// For genus-1: generators[0] = ω_1, generators[1] = ω_2.
std::vector<Eigen::Vector2d> generators;
bool is_valid() const { return vertices.size() >= 3; }
};
// ─────────────────────────────────────────────────────────────────────────────
// compute_fundamental_domain_genus1
//
// Builds the parallelogram fundamental domain from Euclidean holonomy data
// with exactly 2 generators ω_1, ω_2.
//
// Vertices (CCW):
// v0 = (0, 0)
// v1 = ω_1
// v2 = ω_1 + ω_2
// v3 = ω_2
//
// Edge identifications:
// bottom (v0→v1) ≡ top (v3→v2) by ω_2
// left (v3→v0) ≡ right (v2→v1) by ω_1 (reversed convention)
// ─────────────────────────────────────────────────────────────────────────────
inline FundamentalDomain compute_fundamental_domain_genus1(
const HolonomyData& hol)
{
FundamentalDomain fd;
if (hol.translations.size() < 2) return fd;
Eigen::Vector2d w1 = hol.translations[0];
Eigen::Vector2d w2 = hol.translations[1];
// Ensure CCW orientation: cross product z-component w1 × w2 > 0
double cross = w1.x() * w2.y() - w1.y() * w2.x();
if (cross < 0.0) std::swap(w1, w2);
Eigen::Vector2d origin = Eigen::Vector2d::Zero();
fd.vertices = { origin, w1, w1 + w2, w2 };
// Edge 0: v0→v1 (= bottom), Edge 2: v3→v2 (= top, reversed)
// Identification: bottom ≡ top translated by w2
// Edge 1: v1→v2 (= right), Edge 3: v0→v3... wait let me use standard labeling:
// Edges by index: 0: v0→v1, 1: v1→v2, 2: v2→v3, 3: v3→v0
// Identifications: 0 ≡ 2 (reversed: bottom ≡ top by w2)
// 1 ≡ 3 (reversed: right ≡ left by w1)
fd.edge_identifications = { {0, 2}, {1, 3} };
fd.generators = { w1, w2 };
return fd;
}
// ─────────────────────────────────────────────────────────────────────────────
// compute_fundamental_domain
//
// Dispatcher: for genus-1 uses compute_fundamental_domain_genus1.
// For higher genus returns an empty FundamentalDomain (not yet implemented).
// ─────────────────────────────────────────────────────────────────────────────
//
// TODO(Phase 8): Implement the standard 4g-gon fundamental domain for genus g > 1.
//
// Algorithm outline (boundary-walk method):
// ─────────────────────────────────────────
// 1. Construct the CutGraph on the cut-open mesh (already done upstream).
// This yields 2g cut edges; cutting them converts the closed surface into
// a topological disk.
//
// 2. Walk the boundary of the cut-open disk in CCW order:
// Start from any boundary halfedge and follow `next(h)` along the boundary
// (i.e. skip to the next boundary halfedge at each vertex). Collect the
// 2·(4g) = 8g boundary halfedges in order.
// Each halfedge h_k corresponds to a UV vertex `halfedge_uv[h_k.idx()]`.
//
// 3. Identify paired sides:
// The 4g sides of the polygon alternate as a_1 b_1 a_1^{-1} b_1^{-1} …
// For each cut edge e_i (i = 1 … 2g) the two sides that are identified
// are those whose source/target vertices match under the holonomy generator
// ω_i (Euclidean) or T_i (hyperbolic).
// Record the identifications as edge_identifications[k] = (i, j).
//
// 4. Fill FundamentalDomain:
// vertices = UV corners from the boundary walk.
// edge_identifications = paired-edge list from step 3.
// generators = holonomy.translations (Euclidean) or the
// fixed points of holonomy.mobius_maps (hyperbolic,
// requires computing axis of T_i ∈ SU(1,1)).
//
// References:
// Erickson & Whittlesey, "Greedy optimal homotopy and homology generators"
// SODA 2005.
// Desbrun, Kanso, Tong, "Discrete Differential Forms for Computational
// Modeling", in Discrete Differential Geometry (2008).
//
// Note: The Siegel period matrix Ω ∈ H_g (g×g complex symmetric, Im Ω > 0)
// for genus g > 1 also requires integration of holomorphic differentials —
// this is intentionally deferred and NOT implemented here.
// See period_matrix.hpp for the genus-1 case (τ = ω_2/ω_1 ∈ ).
// ─────────────────────────────────────────────────────────────────────────────
inline FundamentalDomain compute_fundamental_domain(
const HolonomyData& hol)
{
int n = static_cast<int>(hol.translations.size());
int g = n / 2;
if (g == 1) return compute_fundamental_domain_genus1(hol);
// Higher genus: boundary-walk 4g-polygon — not yet implemented (see TODO above).
return FundamentalDomain{};
}
// ─────────────────────────────────────────────────────────────────────────────
// tiling_copy
//
// Given a Layout2D for the cut-open surface and two lattice generators ω_1, ω_2,
// return a translated copy of the layout shifted by m·ω_1 + n·ω_2.
// Useful for visualising the tiled universal cover.
// ─────────────────────────────────────────────────────────────────────────────
inline Layout2D tiling_copy(const Layout2D& layout,
const Eigen::Vector2d& w1,
const Eigen::Vector2d& w2,
int m, int n)
{
Layout2D copy = layout;
Eigen::Vector2d shift = static_cast<double>(m) * w1
+ static_cast<double>(n) * w2;
for (auto& p : copy.uv) p += shift;
return copy;
}
// ─────────────────────────────────────────────────────────────────────────────
// tiling_neighbourhood
//
// Returns a vector of tiling copies for (m, n) with |m| ≤ m_max, |n| ≤ n_max.
// The result includes the original (m=0, n=0) at index (m_max)(2*n_max+1)+n_max.
// ─────────────────────────────────────────────────────────────────────────────
inline std::vector<Layout2D> tiling_neighbourhood(
const Layout2D& layout,
const HolonomyData& hol,
int m_max = 2, int n_max = 2)
{
std::vector<Layout2D> tiles;
if (hol.translations.size() < 2) {
tiles.push_back(layout);
return tiles;
}
const Eigen::Vector2d& w1 = hol.translations[0];
const Eigen::Vector2d& w2 = hol.translations[1];
for (int m = -m_max; m <= m_max; ++m)
for (int n = -n_max; n <= n_max; ++n)
tiles.push_back(tiling_copy(layout, w1, w2, m, n));
return tiles;
}
} // namespace conformallab