Adds the two research-track questions to the front of the queue, where
they belong for a reader whose publication line maps directly onto our
research-track roadmap entries.
briefing.md gains two new sections:
* Research alignments — a 6-row table mapping the reader's research
threads (decorated DCE, canonical tessellations, hyperideal
rigidity, optimal cone placement, polygon Laplacian, Schläfli
machinery) onto concrete phases of the roadmap, with the closest
published line cited generically (year + venue only).
* What's new on this snapshot — the 6 new porting phases + 9 new
citations + Phase 9f (RESEARCH, no Java parent) + output_uv_map
extension to Inversive-Distance.
questions.md restructures the question set from 5 to 7:
* Q1 (NEW) — research-track alignment: which of 9d.2 / 9f / 10c /
10c′ would unblock concrete experiments?
* Q2 (NEW) — decorated-DCE API surface: A/B/C named parameter vs
new solver vs property-map auto-detect?
* Q3 — Phase 9b-analytic (was Q2)
* Q4 — Phase 9c port-literal vs re-derive (was Q1)
* Q5 — GC-1 cross-validation co-authorship (was Q5)
* Q6 — CGAL submission packaging (was Q4)
* Q7 — The "no" question (was the trailing section)
Also drops Q3 from the previous list (CP-Euclidean output_uv_map),
since that question is now answered (Phase 9c, runtime error today,
on the deferred list — no reviewer input needed).
Adds a final "After the meeting — would you collaborate?" block so
the post-meeting collaboration options (acknowledgement / co-author /
cadence / PRs) do not surprise the reader on the day.
agenda.md reorders §2 to match the new question order; the timing
shifts Q1/Q2/Q3 (research) to the front and Q4/Q6 (project
management) to the back. Memo template at the bottom now has 7
named answer slots instead of 5 numbered ones.
Co-Authored-By: Claude Opus 4.7 <noreply@anthropic.com>
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# Questions for the external reviewer
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> Please skim this before the meeting. Each question is scoped so that
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> "do A" / "do B" / "either is fine" is a sufficient answer; deeper
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> dives are welcome but not required.
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These are the seven items that would benefit most from a second opinion.
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* **Q1–Q2** are research-track questions — your active publication line
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in **decorated DCE / Penner coordinates / canonical tessellations /
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hyperideal polyhedra** makes you the best-positioned reader for them.
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They ask whether conformallab++ could become *infrastructure for your
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own future numerical experiments*, and what the minimum API surface
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would be.
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* **Q3–Q4** are porting decisions in our roadmap where your view of the
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underlying mathematics would change the answer.
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* **Q5–Q6** are project-management questions where peer input is
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valuable but not blocking.
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* **Q7** is an open invitation to push back on any architecture
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decision you think we got wrong.
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---
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## Q1 — Research-track alignment: which RESEARCH phase would unblock concrete experiments you want to run?
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Three phases in `doc/roadmap/research-track.md` are research-only
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(no Java parent, no immediate user request), but each maps onto a
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recognised live research line and each has explicit acceptance
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criteria:
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| Phase | What it would add | Closest published line |
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|---|---|---|
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| **9d.2** | Decorated DCE in non-Euclidean (spherical + hyperbolic) geometries; Penner coordinates as first-class DOF; automatic cone placement for non-Euclidean targets | Decorated DCE in non-Euclidean geometries (2025, *Discrete Comput. Geom.*); optimal cone singularities for Euclidean flattening (2018, *SIGGRAPH*) |
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| **9f** | Discrete Laplace–Beltrami on **non-triangular** polygonal meshes (virtual-node / generalised cotangent), making DCE work on quad / Voronoi tessellations without re-triangulation | Polygon Laplacians (2011 *SIGGRAPH* + 2020 *TOG*) |
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| **10c + 10c′** | Canonical Delaunay tessellations of decorated hyperbolic surfaces; Koebe polyhedron realisation (KAT) with rigidity-aware Newton | Canonical tessellations of decorated hyperbolic surfaces (2023, *Geom. Dedicata*); rigidity of circle / hyperideal polyhedra (2026, preprint) |
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**Question A:** which of these (if any) would unblock concrete
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numerical experiments you have wanted to run but currently have no
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reference implementation for?
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**Question B:** for the one(s) you would use, would you want us to
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target the *next* milestone after Phase 9c, or is there a different
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order that would serve your research better?
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Context:
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[`research-track.md`](../roadmap/research-track.md) §"Non-Euclidean
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cone extensions" and §"Polygon Laplacian"; the integrated literature
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sits in [`math/references.md`](../math/references.md).
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---
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## Q2 — Decorated-DCE API surface: what would you need from us to use the library for Penner-coordinate work?
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If you wanted to compute the variational energy + Newton update for
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**decorated discrete conformal equivalence** (vertex `u`-DOFs plus
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per-edge Penner decoration `λ_e`), the existing five-solver scaffold
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gives us three plausible API directions:
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- **(A) Named parameter on the existing Euclidean entry.**
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`discrete_conformal_map_euclidean(mesh, parameters::penner_decoration_map(λ))`.
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Smallest change; preserves the single-entry-per-geometry pattern;
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hides the decoration as "just another property map".
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- **(B) Separate `decorated_*` solver headers.**
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New entry `CGAL::decorated_discrete_conformal_map_{euclidean,
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spherical, hyperbolic}` with its own `Default_decorated_*_traits`.
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Cleaner separation of concerns; mirrors the way CP-Euclidean and
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Inversive-Distance are their own headers.
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- **(C) Per-edge decoration as just another property map** that the
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existing solvers consume when present (zero-decoration = current
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behaviour by construction). Minimal API expansion; risk of
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surprising convergence behaviour when decoration is silently zero
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vs explicitly zero.
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**Question:** which of A / B / C matches what you would expect from
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a CGAL-style header? If "none of the above" — what would you write
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in our place?
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Context: Phase 9d.2 in
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[`research-track.md`](../roadmap/research-track.md); the existing
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named-parameter helpers in
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[`code/include/CGAL/Conformal_map/internal/parameters.h`](../../code/include/CGAL/Conformal_map/internal/parameters.h).
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---
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## Q3 — Phase 9b-analytic Hessian: implement now or later?
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We have:
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- **Done**: per-face block-FD Hessian (96× faster than naive full-FD).
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- **Derived but not implemented**: analytic Hessian via the Schläfli
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identity, expected ~6× further speedup over block-FD.
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- **Derivation document**:
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[`doc/math/hyperideal-hessian-derivation.md`](../math/hyperideal-hessian-derivation.md)
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(805 lines, all sign pitfalls covered, references Schläfli 1858,
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Milnor 1982, Vinberg 1993, Cho–Kim 1999, Glickenstein 2011,
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Springborn 2020, Rivin–Springborn 1999).
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**Question:**
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- At what mesh size does the ~6× become user-visible enough to
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justify ~2 weeks of implementation work, given the typical sizes
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in your work?
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- Are you aware of subtleties in the Schläfli-based derivation our
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document might be missing?
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If the answer is "implement", we'd target Phase 9b-analytic right
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after the meeting.
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---
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## Q4 — Phase 9c (4g-polygon canonical form): port-literal vs re-derive?
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The Java original has two utility classes:
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- `FundamentalPolygonUtility` (~600 lines)
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- `CanonicalFormUtility` (~900 lines)
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that together compute the canonical 4g-polygon for a higher-genus
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surface from its cut graph.
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We can either:
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- **(A) Port literally** (~2 weeks). Faithful, predictable, fixes
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the Java algorithm in C++. Down-side: we inherit the Java code's
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ad-hoc style and edge-case handling.
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- **(B) Re-derive from Springborn 2020 §5** (~3 weeks). Uses our
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existing `cut_graph.hpp` + holonomy infrastructure cleanly.
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Down-side: longer; potential for new bugs not seen by the Java
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original's test cases.
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**Question**: which route do you prefer, and is there a reference
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implementation (Mathematica notebook, paper appendix, other research
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codebase) we should cross-validate against?
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Context: `doc/roadmap/phases.md` §Phase 9c, `doc/roadmap/porting-status.md`.
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---
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## Q5 — geometry-central cross-validation (GC-1): would you co-author?
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Two libraries solve the DCE problem from opposite algorithmic
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directions:
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- **conformallab++**: Newton on the fixed mesh (no intrinsic flips).
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- **geometry-central**: Ptolemy flips on an intrinsic triangulation.
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An automated comparison on common meshes would be:
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- A short paper (the disagreement modes are interesting in their own
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right and connect to the decorated-DCE framework via canonical
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tessellation invariants).
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- A confidence-building tool for both libraries.
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- ~3 days of plumbing (CMake-fetch geometry-central, write 5 common
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test meshes, compare `u_per_vertex` to a tolerance).
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**Question:** would you be interested in co-authoring such a comparison
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note (with us doing the implementation)? Or do you know someone in a
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neighbouring group who would be a natural co-author?
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---
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## Q6 — CGAL submission strategy: one package or several?
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For the long-term CGAL submission:
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- **(A) One package** "Discrete_conformal_map" — single entry header,
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five solver functions, one set of named parameters. Easier for
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users to find; harder to compartmentalise reviews.
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- **(B) Five packages** "Discrete_*" — each DCE model is its own
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CGAL package with its own concept + reference manual. More
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ceremony for users; more familiar review surface for CGAL editors.
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Today the code is structured per-functional (Strategy C — see
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[`locked-vs-flexible.md`](../architecture/locked-vs-flexible.md) §7).
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Either submission packaging is achievable from this base.
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**Question:** what's the CGAL editor convention for related-but-distinct
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algorithms — `Polygon_mesh_processing` as one example (one package, many
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algorithms), vs `Triangulation_2`/`Triangulation_3`/`Periodic_*`/
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`Hyperbolic_*` as another (multiple packages for related algorithms)?
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---
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## Q7 — The "no" question (this is the highest-value answer)
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Looking at any of the 12 architecture decisions in
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[`locked-vs-flexible.md`](../architecture/locked-vs-flexible.md), is
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there one where you think *"no, that's the wrong call, here's why"*?
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This is a deliberately blunt question because positive feedback is
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nice but negative feedback is rarer and more valuable. The 🔴
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load-bearing decisions are the most consequential to revisit, because
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waiting longer makes them more expensive:
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- **#1** `CGAL::Surface_mesh<P>` as default mesh
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- **#3** header-only, no compiled library
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- **#6** Eigen as linear-algebra back-end
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- **#11** MIT license (only relevant if it conflicts with a CGAL-
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submission constraint)
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"No" is the most useful answer.
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---
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## Things you do *not* need to comment on (unless you want)
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- C++ style choices captured in `.clang-format` + `.clang-tidy`.
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- Test framework choice (GTest).
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- License (MIT, with vendored deps catalogued in
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[`code/deps/THIRD-PARTY-LICENSES.md`](../../code/deps/THIRD-PARTY-LICENSES.md)).
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- Build system (CMake ≥ 3.20, header-only consumer + optional
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CLI/Viewer).
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- Documentation tooling (Doxygen with auto-generated `headers.md`).
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These are conscious decisions matched to CGAL conventions and are
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not load-bearing in the sense that revisiting them later is cheap.
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---
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## After the meeting — would you collaborate?
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A separate "after the meeting" conversation, but flagged here so it
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does not surprise you on the day:
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- **Acknowledgement** in any future CGAL submission / paper would be
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the default, and we would ask first.
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- **Co-authorship** on Q5 (the GC-1 cross-validation note) is on the
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table if you said yes there.
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- **Periodic update cadence** (quarterly? per-milestone?) — open
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question, no expectation.
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- **Pull requests** from your side are welcome and reviewable on the
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Codeberg repo. We would not expect them — but we would not turn
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them away either.
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