Binds the modeling core the app builds every feature out of — 93 of its 138 symbols now resolve, up from 34. New modules: GeomAbs, Geom2d, Geom, TCollection, TColgp, TColStd, GProp, BRepGProp, Bnd, BRepBndLib, Adaptor3d, BRepAdaptor, GeomLProp, GeomAPI, BRepBuilderAPI, BOPAlgo, BRepAlgoAPI, BRepPrimAPI, GC, BRepMesh; gp and BRep_Tool completed. Three structural decisions: - BRepBuilderAPI_MakeShape carries Build/Shape/Generated/Modified/IsDeleted for every maker in the binding, so the booleans, the primitives and (later) the fillet builders all answer the app's duck-typed provenance layer through ordinary virtual dispatch. History lists come back copied, so they outlive the builder. - The executing two-argument BRepAlgoAPI constructors stay unbound; operands go in through SetArguments/SetTools. Section keeps Init1/Init2, which are plain setters. BOPAlgo moved up from Inc 2 — SetGlue needs its enum. - Adaptor3d is registered although the app never imports it: every method it calls on BRepAdaptor_Curve/Surface is a virtual declared there, so binding them once on the bases leaves mod_BRepAdaptor.cpp with just constructors. Gate: tests/test_inc1_modeling.py against reference values gen_fixtures.py now records from the stock wheel — measurements, per-face area/centroid in map order, mesh counts, and the boolean history map compared exactly, since that is the substrate the app's topological naming is built on. tools/sigdiff.py compares our bound surface against stock's, because a wrong nb::init<> is silent: MakePrism's five-argument form bound OCCT's semi-infinite gp_Dir overload (gp_Dir converts from gp_Vec), producing a valid solid of the wrong shape with the flags shifted along. The fixture digest caught it; sigdiff finds the class of bug directly, and now reports only one deliberate deviation. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01DfriM8XUkn7uYf5Dwe2xo6
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Adding symbols
The routine task: the app needs an OCCT class this binding does not expose yet. Read design.md first if you are touching the machinery instead.
1. Find what is missing
python tools/inventory.py --emit # re-scan the app for OCP usage
python tools/inventory.py --check # what the wheel lacks, by module
python tools/inventory.py --methods --only BRepAdaptor # what to bind on each class
--check groups gaps by module, which is how increments are scoped. It only
sees symbols reached through an import (TopExp.MapShapes_s), so it answers
which classes to bind but not what to bind on them.
--methods answers the second question: it resolves variables assigned
straight from a constructor and reports the methods called on them, plus
chained calls as Klass.Outer() -> Inner (those constrain Outer's return
type — adaptor.Cylinder().Radius() is a requirement on gp_Cylinder). It is
a heuristic — it does not follow arguments, returns or attributes, and a local
reassigned from something else shows up as noise — so read it as a starting
surface, not a specification.
2. Write the module
One file per OCP module: src/modules/mod_<Name>.cpp.
#include "../common/occt_module.h" // brings in the handle caster and "_a"
#include "../common/occt_policies.h" // OCP_RETURN_COPY, OCP_NOGIL
#include <Some_Class.hxx>
void register_Some(nb::module_ &root) {
nb::module_ m = ocp_submodule(root, "Some");
nb::class_<Some_Class>(m, "Some_Class")
.def(nb::init<>())
.def("Value", &Some_Class::Value, "index"_a, OCP_RETURN_COPY)
.def("Build", &Some_Class::Build, OCP_NOGIL);
}
Declare and call register_Some in src/core.cpp. Registration order matters
only in that a base class must precede its derived classes.
3. The checklist
- Shape-returning API →
OCP_RETURN_COPY. Explorers, iterators, map lookups,Generated/Modifiedlists — anything handing out a reference into storage the caller does not own. - Static method →
OCP_DEF_S(cls, "Name", ...), which appends_s. Every static, without exception. - Transient (handle-managed) class → derive from
Standard_Transientin thenb::class_declaration and bind constructors withocp_new<T, Args...>(). Nevernb::init<>— see design.md. - Long kernel call →
OCP_NOGIL, but only if it cannot re-enter Python. - Executing constructor → banned only where a deferred
SetX/BuildAPI exists and the constructor duplicatesBuild(): theBRepAlgoAPI_*booleans and splitter. Bind their default constructor plus theSetX/Buildsequence. Classes that only compute in their constructor and have no deferred form —BRepMesh_IncrementalMesh,BRepCheck_Analyzer,GeomAPI_*,BRepClass3d_SolidClassifier,BRepExtrema_DistShapeShape,GCPnts_*,BRepBuilderAPI_Transform— bind exactly as stock does. - Enum →
nb::is_arithmetic()and.export_values(). Message_ProgressRangeparameters → omit them. The app never passes one (noOCP.Messageimport anywhere), and leaving them out keeps signatures small. Add the module if--checkever reports it.- Out-parameters stay out-parameters.
BRep_Tool.Triangulation_s(F, L)writes throughLbecause the app calls it that way; returning a tuple would be tidier and wrong.
When in doubt about a signature, ask the stock wheel rather than guessing:
cd ../app && uv run --project backend python -c \
"from OCP.BRep import BRep_Tool; print(BRep_Tool.Triangulation_s.__doc__)"
And after writing a module, run make sigdiff, which asks it about every class
at once. This is not pedantry about matching upstream — it catches the one
mistake in this codebase that is both easy to make and silent:
nb::init<TopoDS_Shape, gp_Vec, bool, bool, bool>forBRepPrimAPI_MakePrismcompiled fine and bound the wrong constructor. OCCT's finite-prism overload takes four arguments; the five-argument one takes agp_Dirfor a semi-infinite prism, andgp_Dirconverts implicitly fromgp_Vec. The result was a valid solid of the wrong shape, with theCopyandCanonizeflags shifted one position along.
Anything sigdiff reports is either that bug or a deliberate deviation; if it
is deliberate, say so in a comment where the class is bound.
4. New toolkits
If the linker cannot find a symbol, the class lives in a toolkit not yet listed
in CMakeLists.txt (target_link_libraries(_OCP PRIVATE ...)). Add it there;
auditwheel bundles whatever the linker records, so nothing else changes.
5. Verify and ship
make dev # compile + tests
make test-asan # if you touched ownership or added transients
make wheel # bump the .devN in pyproject.toml first
make publish
tools/parity_venv.sh && python tools/inventory.py --check
The app's own tests cannot gate an individual increment. backend/tests/ conftest.py imports n3xd.main, which pulls in the whole app and therefore the
whole OCP surface, so every backend test fails at collection until the last
module is bound. Increments are gated here instead: tools/gen_fixtures.py
records reference values from the stock wheel (counts, Modified/Generated/
IsDeleted history maps, measured floats) into tests/data/manifest.json, and
tests/test_inc<N>_*.py reproduces the same constructions under our wheel.
Counts and history maps must match exactly; floats compare at rel 1e-9.
The app's full suite is the Inc 4 gate, run in the parity venv, alongside
pytest -m perf and backend/tools/rebuild_sweep.py --diff over the project
store.
Adding to n3xd_ocp instead
Anything that is not a faithful mirror of an upstream symbol belongs in
src/ext/ under the n3xd_ocp namespace: bulk array APIs, batched measurement,
anything GIL-free that upstream does not offer. OCP.* staying a
symbol-for-symbol drop-in is what makes parity testing meaningful, so keep
additive work out of it. Register leaf modules with
ocp_named_module("n3xd_ocp.<name>") and re-export them in
python/n3xd_ocp/__init__.py.