Files
cdsl-cad/backend/engine/cdsl_engine/session.py
T
likang 994d06aaea feat(selector): 增加离线候选遍历与严格回放验证 Demo
- 新增 selector_candidate_demo,移除 provenance intent 后枚举候选 selector
- 对候选分支执行有界重建与严格 STEP 比较
- 仅在候选遍历完整且唯一 strict 通过时生成 selector 映射记录
- 增加 selector 候选搜索、预算限制和记录生成的测试
- 保持生产 selector resolver 不受 Demo 逻辑影响
- 更新 CADFS 能力台账,记录 IMPRINT 派生 profile 的 lineage selector 缺口
2026-09-10 15:12:57 +08:00

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"""Execution session state and the geometry adapter boundary.
``ExecutionSession`` owns the active body, body-member graph, replay
definitions, and selector-resolution evidence. ``GeometryAdapter`` is the
kernel-facing protocol the session consumes; geometry values stay opaque so a
different B-rep backend can replace build123d without touching the runtime.
"""
from __future__ import annotations
from copy import deepcopy
from dataclasses import dataclass, field
from typing import Any, Protocol
from .build123d_adapter import Build123dGeometryAdapter
from .runtime_base import FeatureExecutionError
from .specs import AxisSpec, BendSpec, GearSpec, HoleSpec, PlaneSpec, RackSpec, ThreadSpec, Vector3
from .topology import (
FeaturePlanNode,
FeatureResult,
RuntimeDiagnostic,
SelectorResolution,
TopologyDelta,
TopologyRecord,
TopologyRegistry,
validate_selector_provenance_intent,
)
class GeometryAdapter(Protocol):
"""Kernel boundary consumed by the session runtime.
Geometry values remain opaque here. A future adapter may use a different
B-rep kernel as long as it preserves these construction/query contracts.
"""
def topology_records(self, body: Any, feature_id: str, body_id: str) -> list[TopologyRecord]: ...
def body_solids(self, body: Any) -> list[Any]: ...
def body_geometry(self, body: Any) -> dict[str, Any]: ...
def surface_geometry(self, surface: Any) -> dict[str, Any]: ...
def faces_for_sketch(self, sketch: dict[str, Any]) -> list[Any]: ...
def faces_for_sketch_with_source_anchors(self, sketch: dict[str, Any]) -> tuple[list[Any], list[dict[str, Any]]]: ...
def face_with_holes(self, outer: Any, holes: list[Any]) -> Any: ...
def loft(self, sketches: list[dict[str, Any]]) -> Any: ...
def loft_with_topology_delta(self, sketches: list[dict[str, Any]]) -> tuple[Any, TopologyDelta | None]: ...
def loft_with_cap_face(self, cap_face: Any, sketches: list[dict[str, Any]]) -> Any: ...
def sweep(self, section: Any, spine: Any, *, inner_wires: list[Any] | None = None, make_solid: bool = True, is_frenet: bool = False, transition: Any = None) -> Any: ...
def sweep_with_topology_delta(self, section: Any, spine: Any, *, inner_wires: list[Any] | None = None, make_solid: bool = True, is_frenet: bool = False, transition: Any = None) -> tuple[Any, TopologyDelta | None]: ...
def sweep_path(self, points: list[Vector3], *, start_tangent: Vector3 | None = None, end_tangent: Vector3 | None = None, parameters: list[float] | None = None) -> Any: ...
def face_normal(self, face: Any) -> Vector3: ...
def extrude(self, face: Any, direction: Vector3) -> Any: ...
def extrude_with_topology_delta(self, face: Any, direction: Vector3) -> tuple[Any, TopologyDelta]: ...
def extrude_taper_with_topology_delta(self, face: Any, direction: Vector3, taper_deg: float) -> tuple[Any, TopologyDelta | None]: ...
def extrude_taper(self, face: Any, direction: Vector3, taper_deg: float) -> Any: ...
def extrude_trimmed(self, face: Any, target: Any, direction: Vector3) -> Any: ...
def surface_wires_for_sketch(self, sketch: dict[str, Any]) -> list[Any]: ...
def extrude_surface(self, wires: list[Any], direction: Vector3) -> Any: ...
def combine_surfaces(self, *surfaces: Any) -> Any: ...
def revolve(self, face: Any, angle_deg: float, axis: AxisSpec) -> Any: ...
def revolve_surface(self, wire: Any, angle_deg: float, axis: AxisSpec) -> Any: ...
def intersect(self, left: Any, right: Any) -> Any: ...
def intersect_with_topology_delta(self, left: Any, right: Any) -> tuple[Any, TopologyDelta | None]: ...
def transform(self, body: Any, transform: dict[str, Any]) -> Any: ...
def transform_with_topology_delta(self, body: Any, transform: dict[str, Any]) -> tuple[Any, TopologyDelta]: ...
def fuse(self, body: Any | None, solid: Any) -> Any: ...
def fuse_with_topology_delta(self, body: Any | None, solid: Any) -> tuple[Any, TopologyDelta | None]: ...
def combine(self, body: Any | None, solid: Any) -> Any: ...
def cut(self, body: Any, tool: Any) -> Any: ...
def cut_with_topology_delta(self, body: Any, tool: Any) -> tuple[Any, TopologyDelta | None]: ...
def sphere(self, radius_mm: float, center_mm: Vector3) -> Any: ...
def cylinder_with_topology_delta(self, radius_mm: float, height_mm: float, axis: AxisSpec | None = None) -> tuple[Any, TopologyDelta]: ...
def thread_solid(self, spec: ThreadSpec) -> Any: ...
def bend_solid(self, spec: BendSpec) -> Any: ...
def gear_solid(self, spec: GearSpec) -> Any: ...
def rack_solid(self, spec: RackSpec) -> Any: ...
def hole_tool(self, spec: HoleSpec, starts: list[Vector3], inward: Vector3, through_depth_mm: float) -> Any: ...
def body_center(self, body: Any) -> Vector3: ...
def body_span(self, body: Any, direction: Vector3) -> float: ...
def vertex_coordinates(self, vertex: Any) -> Vector3: ...
def intersection_vertex(self, body: Any, face_sets: list[list[Any]]) -> Any: ...
def profile_sample_points(self, face: Any) -> list[Any]: ...
def profile_touches_target(self, target: Any, faces: list[Any]) -> bool: ...
def next_body_face_after(self, body: Any, faces: list[Any], direction: Vector3, *, excluded_face: Any) -> Any: ...
def uniform_intersection_distance(self, target: Any, faces: list[Any], direction: Vector3) -> float: ...
def fillet(self, body: Any, radius_mm: float, edges: list[Any]) -> Any: ...
def fillet_with_topology_delta(self, body: Any, radius_mm: float, edges: list[Any]) -> tuple[Any, TopologyDelta | None]: ...
def tangent_edges(self, body: Any, seeds: list[Any]) -> list[Any]: ...
def chamfer(self, body: Any, distance_mm: float, distance_2_mm: float | None, edges: list[Any], face: Any | None = None) -> Any: ...
def chamfer_with_topology_delta(self, body: Any, distance_mm: float, distance_2_mm: float | None, edges: list[Any], face: Any | None = None) -> tuple[Any, TopologyDelta | None]: ...
def surface_limited_chamfer(self, body: Any, distance_mm: float, edges: list[Any], surfaces: list[Any]) -> Any: ...
def shell(self, body: Any, faces: list[Any], thickness_mm: float, *, inward: bool = True) -> Any: ...
def shell_with_topology_delta(self, body: Any, faces: list[Any], thickness_mm: float, *, inward: bool = True) -> tuple[Any, TopologyDelta]: ...
def export(self, body: Any, path: str) -> None: ...
@dataclass
class ExecutionSession:
sketches: dict[str, dict[str, Any]]
nodes: dict[str, FeaturePlanNode]
adapter: GeometryAdapter = field(default_factory=Build123dGeometryAdapter)
topology: TopologyRegistry = field(default_factory=TopologyRegistry)
body: Any | None = None
body_id: str | None = None
results: dict[str, FeatureResult] = field(default_factory=dict)
replay_definitions: dict[str, FeaturePlanNode] = field(default_factory=dict)
body_members: dict[str, Any] = field(default_factory=dict)
surface_members: dict[str, Any] = field(default_factory=dict)
selector_resolutions: list[dict[str, Any]] = field(default_factory=list)
active_feature_id: str = ""
def register_body(
self,
feature_id: str,
body: Any,
*,
replay_node: FeaturePlanNode | None = None,
body_members: dict[str, Any] | None = None,
topology_delta: TopologyDelta | None = None,
topology_predecessors: list[TopologyRecord] | None = None,
topology_anchors: list[TopologyRecord] | None = None,
) -> None:
# #7 multi-body:主体可能是 Compound(多个独立实体,例如两个不相交的
# 拉伸)。body_id 现在反映真实实体结构而不是"最后一个特征的 id"
# 每个独立 Solid 一个 body:{feature}:{index},供 selector 精确匹配目标
# 实体;单体保持 body:{feature}(与历史行为完全一致)。
self.body = body
self.body_id = f"body:{feature_id}"
self.body_members = dict(body_members) if body_members is not None else {feature_id: body}
# Source-profile anchors are transient construction facts, but unlike
# generic role predecessors they must remain addressable by a later
# selector intent. They never receive a body id, so active selector
# scans cannot mistake them for current model topology.
anchors = list(topology_anchors or ())
for anchor in anchors:
self.topology.register(anchor)
predecessors = [*(topology_predecessors or ()), *anchors]
solids = self.adapter.body_solids(body)
if len(solids) <= 1:
self.topology.replace_body_topology(
feature_id, self.body_id, self.adapter.topology_records(body, feature_id, self.body_id),
topology_delta=topology_delta,
additional_predecessors=predecessors,
)
else:
# 一个 Compound 的全部成员共享同一个前置 body snapshot。逐个登记会让
# 已登记的本轮成员成为下一个成员的 predecessor,进而把 pattern copy
# 的 owner 错误转移到相邻实例。必须原子替换整个多 body 拓扑快照。
members = [
(member_id, self.adapter.topology_records(solid, feature_id, member_id))
for index, solid in enumerate(solids)
for member_id in [f"{self.body_id}:{index}"]
]
self.topology.replace_body_topologies(
feature_id, members, active_body_id=self.body_id, topology_delta=topology_delta,
additional_predecessors=predecessors,
)
self.topology.register(TopologyRecord(
record_id=self.body_id, kind="body", feature_id=feature_id, body_id=self.body_id,
geometry=self.adapter.body_geometry(body), value=body, owner_feature_ids=(feature_id,),
))
if replay_node is not None:
self.replay_definitions[feature_id] = replay_node
def register_transient_prism_tool(
self,
feature_id: str,
tool: Any,
*,
topology_delta: TopologyDelta,
topology_anchors: list[TopologyRecord],
) -> list[TopologyRecord]:
"""Keep one direct-prism primary tool as boolean-input evidence only."""
snapshot_id = f"transient:{feature_id}"
records = self.adapter.topology_records(tool, feature_id, snapshot_id)
return list(self.topology.register_transient_snapshot(
feature_id,
snapshot_id,
records,
topology_delta=topology_delta,
anchors=topology_anchors,
))
def register_surface(self, feature_id: str, surface: Any) -> str:
# 曲面 feature 与实体 body 生命周期相互独立:不能调用 register_body
# 否则 surface 会覆盖 active solid 并改变最终 STEP 的实体结果。
surface_id = f"surface:{feature_id}"
self.surface_members[feature_id] = surface
for record in self.adapter.topology_records(surface, feature_id, surface_id):
self.topology.register(record)
self.topology.register(TopologyRecord(
record_id=surface_id, kind="surface", feature_id=feature_id, body_id=surface_id,
geometry=self.adapter.surface_geometry(surface), value=surface, owner_feature_ids=(feature_id,),
))
return surface_id
def clear_body(self) -> None:
"""Clear the active solid after an explicit deleteBodies result."""
self.body = None
self.body_id = None
self.body_members = {}
def _record_selector_resolution(self, resolution: SelectorResolution) -> SelectorResolution:
evidence = resolution.as_dict()
evidence["feature_id"] = self.active_feature_id
self.selector_resolutions.append(evidence)
return resolution
def _intersection_component_records(self, selector: dict[str, Any]) -> list[TopologyRecord]:
matched = selector.get("matched_selectors") if selector.get("match_mode") == "all" else None
if matched is not None:
if not isinstance(matched, list) or not matched:
raise FeatureExecutionError("intersection_selector_unbound", "Intersection selector has no bound face matches")
resolved = [self._record_selector_resolution(self.topology.resolve(item, active_body_id=self.body_id)) for item in matched]
else:
binding_feature_id = selector.get("binding_feature_id")
active_body_id = None if binding_feature_id and self.body_id != f"body:{binding_feature_id}" else self.body_id
resolved = [self._record_selector_resolution(self.topology.resolve(selector, active_body_id=active_body_id))]
failures = [item for item in resolved if item.status != "resolved" or (item.record is None and not item.records)]
if failures:
detail = failures[0].diagnostic.message if failures[0].diagnostic else "intersection selector component was not resolved"
raise FeatureExecutionError("intersection_selector_component_unresolved", detail)
return [
record
for item in resolved
for record in (item.records or ((item.record,) if item.record is not None else ()))
]
def _resolve_intersection_vertex(self, selector: dict[str, Any]) -> SelectorResolution:
components = selector.get("intersection_of")
if self.body is None:
return SelectorResolution(
selector=selector, status="not_found", candidates=(),
diagnostic=RuntimeDiagnostic("missing_extent_body", "Intersection selector requires an existing body"),
)
if not isinstance(components, list) or len(components) < 2:
return SelectorResolution(
selector=selector, status="not_found", candidates=(),
diagnostic=RuntimeDiagnostic("intersection_selector_incomplete", "Intersection selector requires at least two face components"),
)
try:
face_sets = [self._intersection_component_records(component) for component in components]
if any(record.kind != "face" for records in face_sets for record in records):
raise FeatureExecutionError("intersection_selector_kind", "Intersection selector components must resolve to faces")
vertex = self.adapter.intersection_vertex(self.body, [[record.value for record in records] for records in face_sets])
except FeatureExecutionError as error:
return SelectorResolution(
selector=selector, status="not_found", candidates=(),
diagnostic=RuntimeDiagnostic(error.code, str(error), detail=error.detail),
)
except ValueError as error:
return SelectorResolution(
selector=selector, status="not_found", candidates=(),
diagnostic=RuntimeDiagnostic("intersection_vertex_unresolved", str(error)),
)
point = self.adapter.vertex_coordinates(vertex)
record = TopologyRecord(
record_id=str(selector.get("stable_id") or f"intersection:{id(vertex)}"),
kind="vertex", feature_id=self.active_feature_id, body_id=self.body_id,
geometry={"center_mm": list(point)}, value=vertex,
owner_feature_ids=tuple(filter(None, [str(selector.get("owner_feature_id") or "")])),
)
return SelectorResolution(
selector=selector, status="resolved", record=record,
candidates=({"score": 1.0, **record.public_dict()},),
)
def resolve(self, selector: dict[str, Any]) -> SelectorResolution:
if selector.get("intersection_of") is not None:
# The session computes vertex intersections directly from resolved
# face components, so enforce the same outer provenance gate that
# TopologyRegistry.resolve applies before any geometry operation.
validation_error = validate_selector_provenance_intent(selector)
if validation_error is not None:
return self._record_selector_resolution(SelectorResolution(
selector=selector,
status="not_found",
candidates=(),
diagnostic=validation_error,
))
return self._record_selector_resolution(self._resolve_intersection_vertex(selector))
owner = str(selector.get("owner_feature_id") or "")
active_body_id = f"surface:{owner}" if owner in self.surface_members else self.body_id
return self._record_selector_resolution(self.topology.resolve(selector, active_body_id=active_body_id))
def result(
self,
node: FeaturePlanNode,
*,
context: PlaneSpec | AxisSpec | None = None,
diagnostics: list[RuntimeDiagnostic] | None = None,
include_body: bool = True,
surface_id: str | None = None,
) -> FeatureResult:
result = FeatureResult(
feature_id=node.feature_id, atomic_id=node.atomic_id, status="executed",
body_id=self.body_id if include_body else None, surface_id=surface_id,
context=context, replay_definition={"atomic_id": node.atomic_id, "params": deepcopy(node.params), "sketch_id": node.sketch_id},
diagnostics=diagnostics or [],
)
self.results[node.feature_id] = result
return result
def replay_sources(self, source_feature_ids: list[Any]) -> list[FeaturePlanNode]:
"""Return selected source features in their original history order.
A pattern's exported selection order is not an execution order. In
particular, a boolean cut may appear before its parent boss in the
raw selection array. The CDSL feature list is dependency-ordered by
semantic validation, so it is the stable order for replay.
"""
requested = {str(feature_id) for feature_id in source_feature_ids}
sources = [
feature
for feature_id, feature in self.nodes.items()
if feature_id in requested and feature_id in self.replay_definitions
]
if len(sources) != len(requested):
missing = sorted(requested - {source.feature_id for source in sources})
raise ValueError(f"pattern source features have no replay definitions: {', '.join(missing)}")
return sources