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External reviewer pass over the literature references. Verified entries against arXiv/DOI/publisher and corrected misattributions that had propagated across the docs. Corrected citations (consistent across all docs): - Bowers-Bowers-Lutz 2026: title was the 2017 paper's -> "Rigidity of Koebe Polyhedra and Inversive Distance Circle Packings" - Liouville theorem: "Springborn 2019" -> Pinkall & Springborn, Geom. Dedicata 214 (2021) - Bobenko-Pinkall-Springborn: "G&T 14 (2010)" -> G&T 19(4) (2015), 2155-2215 - Optimal Cone Singularities: "Crane, Soliman, Ben-Chen, Schroeder" -> Soliman, Slepcev, Crane, ACM TOG 37(4) - Schlaefli formula: "Rivin, Springborn 1999" -> Rivin, Schlenker - Quasiconformal distortion: "Springborn, Veselov" -> Born, Buecking, Springborn (arXiv:1505.01341) - Period matrices: "Bobenko, Buecking 2009" (was Bobenko-Mercat-Schmies' title) -> Bobenko-Mercat-Schmies 2011 + genuine Bobenko-Buecking 2021 - Fabricated entry: "Alexa 2020, DOI 10.1145/3414685.3417840" pointed to an unrelated paper (Pixelor) -> Bunge, Herholz, Kazhdan, Botsch 2020 - Stripe Patterns: "Bonneel et al. 2015" -> Knoeppel, Crane, Pinkall, Schroeder 2015 Equation-number corrections (verified against the PDFs): - Glickenstein 2011 "eq. 4.6" -> "§5.2" (no such equation label exists) - Springborn 2020 "eq. 4.6" -> "§4 variational gradient" - inversive-distance attribution softened to classical inversive distance Other: - DBFEnergy bibliography (separate repo) and convergence half-sentence in novelty-statement.md §3.3 (Bobenko-Buecking 2021) - Status legend (implemented vs planned) at top of references.md - New Phase 12 (decorated DCE & geometric transition, Chain A, near-term) and Phase 13 (canonical tessellations & polyhedral realisation, Chain B capstone) in phases.md + research-track.md; 10c scope-boundary note clarifying infrastructure vs Lutz-specific algorithms Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
185 lines
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185 lines
11 KiB
Markdown
# Reviewer briefing — conformallab++
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> **Audience.** Active researcher in discrete differential geometry —
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> specifically the research line around **decorated discrete conformal
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> equivalence**, **Penner coordinates on hyperbolic surfaces**,
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> **canonical Delaunay tessellations of decorated surfaces**, and
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> **hyperideal polyhedra**. Treats the reader as a peer who is more
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> likely to *use* conformallab++ as numerical infrastructure for their
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> own future experiments than to merely evaluate it as a software
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> artefact.
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>
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> **Purpose.** One page to read before the meeting: what is shipping,
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> which of the reader's research questions it could already support,
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> and where the gaps are that we would close together.
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## In one paragraph
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`conformallab++` is a C++17 header-only re-implementation of the Java
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library [`ConformalLab`](https://github.com/varylab/conformallab)
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(Sechelmann 2016, TU Berlin), built around CGAL's `Surface_mesh` and
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Eigen. v0.9.0 ships five Discrete Conformal Equivalence (DCE) solvers
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— Euclidean, Spherical, HyperIdeal, Circle-Packing Euclidean
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(BPS 2010, face-based), Inversive-Distance (Luo 2004, vertex-based) —
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plus the Newton infrastructure, layout (priority-BFS trilateration in
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ℝ², S², Poincaré disk), Möbius holonomy, period matrix, cut graph, and
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JSON/XML serialisation. Long-term goal: a CGAL package.
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## Where to start (one URL, 5 minutes)
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**👉 https://tmoussa.codeberg.page/ConformalLabpp/**
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The landing page is a hand-curated reviewer hub, not an auto-generated
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index. It links to the Doxygen API, the key markdown documents, and
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shows static quality-gate status.
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## Research alignments — where this library could be infrastructure for your work
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The current snapshot already contains, or has roadmap entries for,
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the following. Most rows match an active publication line in
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discrete differential geometry; a few (marked *no Java parent*) are
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research-only phases the reader can shape at design stage.
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| Your research thread | What this snapshot has | Phase |
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| **Decorated DCE in non-Euclidean geometries** (Bobenko–Lutz 2025, *DCG*) | five DCE solvers + traits scaffolding; non-Euclidean cone extension scoped in research-track with acceptance criteria | **9d.2** RESEARCH (planned) |
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| **Canonical Delaunay tessellations of decorated hyperbolic surfaces** (Lutz 2023, *Geom. Dedicata*; Lutz 2024 PhD thesis) | cut-graph + period matrix + hyperbolic-disk layout as scaffolding; canonical-tessellation algorithm itself outlined | **10c** planned |
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| **Hyperideal polyhedra rigidity** (Bowers–Bowers–Lutz 2026) | HyperIdeal functional + analytic Hessian derivation (805-line LaTeX note) | **9b-analytic** derived; **10c′** KAT planned |
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| **Optimal cone placement / non-Euclidean cone metrics** (Crane et al. 2018) | Cone-singularity port via `ConesUtility` scoped; the *non-Euclidean* extension is the research delta | **9d.1** port + **9d.2** RESEARCH |
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| **Polygon Laplacian on general meshes** (Alexa–Wardetzky 2011; Bunge et al. 2020) | *no Java parent* — first phase a reviewer can shape at design stage | **9f** RESEARCH (planned) |
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| **Quasi-isothermic maps** (generalising conformality where exact conformality is impossible — Lawson-correspondence parameterisation) | scoped as a 6-class port (~800 lines) from the Java original: `QuasiisothermicLayout`, `DBFSolution` (discrete Beltrami field), `SinConditionApplication`, `QuasiisothermicDelaunay`, `QuasiisothermicUtility`, `ConformalStructureUtility` | **10e** planned |
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| **Higher-genus + hyperelliptic surfaces** (Bobenko–Mercat–Schmies 2011 / Bobenko–Bücking 2021 on polyhedral period matrices; block-diagonal Z₂ structure) | port of `HyperellipticUtility` + `HyperIdealHyperellipticUtility` scoped; existing period-matrix code as scaffolding | **10b** planned |
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| **Möbius centring for Poincaré-disk layouts** as a variational problem (Lorentz geometry: `E = Σ log(−⟨x,p⟩/√(−⟨x,x⟩))`) | currently we use iterative Fréchet mean in `normalise_hyperbolic()`; the principled variational alternative is scoped via the Java `MobiusCenteringFunctional` port (full gradient + Hessian) | **9d.4** planned |
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| **Boundary-First / interactive flattening** (Sawhney–Crane 2017 BFF; Knöppel–Crane–Pinkall–Schröder 2015 *Stripe Patterns on Surfaces*) | not on the roadmap as ports; documented in [`references.md`](../math/references.md) as comparison points / inspiration for future API design | — |
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| **Schläfli-based variational machinery** (Rivin–Schlenker 1999) | derivation done, implementation gated on your view of whether the ~6× speedup over our block-FD path matters at your mesh sizes | **9b-analytic** ready to implement |
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See [`doc/roadmap/phases.md`](../roadmap/phases.md) for the per-phase
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porting plan, [`doc/roadmap/research-track.md`](../roadmap/research-track.md)
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for the items beyond Java parity with explicit acceptance criteria,
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and [`doc/roadmap/java-parity.md`](../roadmap/java-parity.md) for the
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reverse table (every Java class → C++ destination or *do-not-port*
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rationale).
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## What's new on this snapshot (since the previous publish)
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- **+6 new porting-roadmap phases** (9d cones + 9d.4 Möbius centring /
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9e circle-pattern layout / 10d Koebe circle-domain / 10e
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quasi-isothermic / 10f Koebe polyhedra / 10g cyclic-symmetry
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quotients) derived from a full Java-library scan. See `phases.md`
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for the per-phase plan and `java-parity.md` for the reverse table.
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- **+13 literature citations** integrated into the roadmap, all
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Tier-1/2. Decorated-DCE / canonical-tessellation / hyperideal line:
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Bobenko–Lutz 2024 IMRN; Bobenko–Lutz 2025 *DCG*; Lutz 2023
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*Geom. Dedicata*; Lutz 2024 PhD; Bowers–Bowers–Lutz 2026. Cones,
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polyhedra, period matrices: Soliman–Slepčev–Crane 2018; Pinkall–Springborn
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2021 (discrete Liouville); Bobenko–Mercat–Schmies 2011 / Bobenko–Bücking
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2021; Rivin–Schlenker 1999.
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Polygon Laplacians: Alexa–Wardetzky 2011; Bunge et al. 2020. Integrable +
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practical-flattening context: Born–Bücking–Springborn 2015 (quasiconformal
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distortion); Sawhney–Crane 2017 (BFF); Knöppel et al. 2015 (Stripe
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Patterns).
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- **Phase 9f** (polygon Laplacian on non-triangular meshes) added as
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RESEARCH-only — no Java parent — so you can influence its design
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before it exists.
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- **Phase 10e** (quasi-isothermic maps) and **Phase 9d.4** (variational
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Möbius centring) newly scoped from the Java scan; both touch
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research lines adjacent to decorated DCE.
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- **`output_uv_map`** now covers 4 of 5 DCE solvers (Inversive-Distance
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added; CP-Euclidean deferred to Phase 9c with a clear runtime error
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rather than silent failure).
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## What's true about this snapshot
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| Claim | Concrete evidence |
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| **Library is header-only and standalone** | Verification recipe in `doc/architecture/dependencies.md`: `env -i PATH=… cmake … && ctest` passes with zero quality tools installed. |
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| **Tests: 259 pass, 0 skipped** | `bash scripts/check-test-counts.sh` enforces this against `doc/api/tests.md`; CI fails on drift. |
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| **Doxygen: 100 % public-API coverage, 0 warnings** | `bash scripts/doxygen-coverage.sh --threshold 100` is in CI. |
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| **License hygiene: 66/66 files carry MIT SPDX** | `bash scripts/quality/license-headers.sh` is in CI (strict). |
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| **Build reproducibility: byte-identical between runs** | `bash scripts/quality/reproducible-build.sh` (local, ~6 min). |
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| **Sanitizers (ASan + UBSan) clean on fast suite** | `bash scripts/quality/sanitizers.sh` (local, ~3 min). |
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| **CGAL conventions: 6 rules, 0 violations** | `python3 scripts/quality/cgal-conventions.py` (CI required). |
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## What we want from you
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Seven concrete questions are in
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[`doc/reviewer/questions.md`](questions.md) — please skim them
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beforehand. They are deliberately scoped: each can be answered with
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"go this way" / "no, go that way" / "either is fine".
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Ordered by reviewer-value (the first two are the ones your research
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profile makes you best-positioned to answer):
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1. **Q1 — Research-track alignment** — of the three RESEARCH-track
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phases (9d.2 non-Euclidean cones, 9f polygon Laplacian, 10c
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canonical tessellations + 10c′ Koebe polyhedra), which would
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unblock concrete experiments you have wanted to run?
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2. **Q2 — Decorated-DCE API surface** — what's the minimum public
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API for Penner-coordinate / decorated-DCE work? Named parameter
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on the existing Euclidean entry, separate `decorated_*` solvers,
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or per-edge decoration weights via property maps?
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3. **Q3 — Phase 9b-analytic** — is the ~6× speedup over the current
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block-FD Hessian worth ~2 weeks of implementation, at the mesh
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sizes you typically work with?
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4. **Q4 — Phase 9c (4g-polygon)** — port the Java implementation
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literally, or re-derive from Springborn 2020 §5?
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5. **Q5 — geometry-central cross-validation (GC-1)** — would you
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be interested in co-authoring a Newton-vs-Ptolemy-flips comparison?
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6. **Q6 — CGAL submission strategy** — one package or several?
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7. **Q7 — The "no" question** — looking at our 12 architecture
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decisions, is there one you would push back on?
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## What's deliberately deferred (so we can discuss with you first)
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| Item | Why deferred |
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| Phase 9b-analytic (Schläfli-based HyperIdeal Hessian) | derivation done (805-line LaTeX doc), implementation depends on your opinion of payoff |
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| Phase 9c (fundamental-polygon utility, 4g-polygon canonical form) | algorithm choice up to you |
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| Cross-validation against geometry-central (GC-1) | potential paper, scope depends on your interest |
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| CP-Euclidean `output_uv_map` (per-face circle packing) | needs the BPS-2010 §6 layout algorithm, ~3 days |
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| `.a().b().c()` member-style named-parameter chaining | requires patching CGAL upstream; pipe-operator (`a | b | c`) shipped instead |
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These are all flagged in
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[`doc/architecture/locked-vs-flexible.md`](../architecture/locked-vs-flexible.md)
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§"Known limitations".
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## Architectural decisions you might want to challenge
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12 decisions classified 🔴 load-bearing / 🟡 semi-fixed / 🟢 opportunistic
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in [`doc/architecture/locked-vs-flexible.md`](../architecture/locked-vs-flexible.md).
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The ones most worth your time:
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- **#1 Surface_mesh as default** — 🔴 ~3 weeks to change. Are you OK
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with this default, or should we wire Polyhedron_3 / OpenMesh now?
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- **#6 Eigen as linear-algebra back-end** — 🔴 ~2 weeks to change. Are
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the Eigen sparse solvers (SparseCholesky + SparseQR fallback)
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sufficient for the mesh sizes you've seen, or should we look at
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CHOLMOD / PETSc?
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- **#7 Strategy C** (one Default trait per functional, not a unified
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trait) — 🟡 ~1 week to refactor. CGAL convention agrees; do you?
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## How to actually run something
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```bash
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git clone https://codeberg.org/TMoussa/ConformalLabpp && cd ConformalLabpp
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cmake -S code -B build && cmake --build build --target conformallab_tests
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ctest --test-dir build # ~2 s, 23 pure-math tests
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# CGAL tests (adds Boost as a system dep):
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cmake -S code -B build -DWITH_CGAL_TESTS=ON
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cmake --build build --target conformallab_cgal_tests -j
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ctest --test-dir build # ~3 min, 236 CGAL tests
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```
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A more end-to-end recipe lives in `scripts/try_it.sh` (also run in CI).
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## Meeting logistics
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- **Format**: video call (you suggested), ~60 min
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- **Materials needed on your side**: just a browser to follow the
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reviewer-hub URL.
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- **Materials I'll have ready**: a screen-share-able terminal with
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the repo open, my own agenda in `doc/reviewer/agenda.md`, and the
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questions doc above.
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Looking forward.
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