b2277f65bf
Build PCM package / build (push) Successful in 8s
No size-threshold guessing: whether a hole is a via or a THT pad already comes from KiCad (board.get_vias vs drilled board.get_pads). Every populated THT pad of the net now carries the complete joint the contacts got: solder-filled barrel, average-thickness coat over a pad-diameter disc on the outer layers, and the protruding-lead cone on the side opposite its owning footprint. The footprint side and the Do-not-populate flag are read from KiCad (footprint pads store absolute positions, so owner lookup is an exact (x, y, number) map); DNP pads stay plating-only with no joint. Contact pads are deduplicated by barrel center so their cone/coat is never applied twice. Barrels are now gathered in single-layer runs too: via rings and drill mouths perforate a lone plane, THT joints stiffen it locally. ViaLink gains solder_filled + protrusion_side (legacy dumps load with the old every-THT-pad-filled semantics). Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
675 lines
26 KiB
Python
675 lines
26 KiB
Python
"""All KiCad IPC access. This is the ONLY module that imports kipy;
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everything downstream works on plain geometry dataclasses.
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Run `python -m fill_resistance.board_io dump.json [net]` against a live
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KiCad to extract without the dialog (all layers of the net, defaults).
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"""
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from __future__ import annotations
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from dataclasses import dataclass, field
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from pathlib import Path
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from kipy import KiCad
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from kipy.board import Board
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from kipy.board_types import ArcTrack, BoardRectangle, Pad, Via
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from kipy.proto.board.board_pb2 import BoardStackupLayerType
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from kipy.proto.board.board_types_pb2 import ZoneType
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from kipy.util.board_layer import (canonical_name, is_copper_layer,
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layer_from_canonical_name)
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import numpy as np
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from . import config
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from .errors import ApiVersionError, CandidateError, SelectionError
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from .geometry import (Electrode, LayerFill, Polygon, Problem, Rect,
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SurfaceBuildup, TrackSeg, ViaLink,
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contact_solder_buildups, linearize_ring,
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tht_joint_buildups)
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MASK_TO_COPPER = {"F.Mask": "F.Cu", "B.Mask": "B.Cu"}
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# zone fills are polygonal in practice; tolerance only guards arc nodes
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ARC_TOL_NM = 10_000
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def connect() -> tuple[KiCad, Board]:
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try:
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kicad = KiCad()
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kicad.ping()
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except Exception as e:
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raise ApiVersionError(
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f"Could not connect to KiCad's IPC API: {e}\n"
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f"Is KiCad running with the API server enabled "
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f"(Preferences > Plugins > Enable KiCad API)?"
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)
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try:
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print(f"connected to KiCad {kicad.get_version()}")
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except Exception:
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pass
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try:
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board = kicad.get_board()
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except Exception as e:
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raise SelectionError(
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f"Could not get the open board from KiCad: {e}\n"
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f"Open the PCB in the board editor and run again."
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)
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return kicad, board
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def board_dir(board: Board) -> Path:
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# document.board_filename is a bare file name (no directory) in
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# KiCad 10.0.1; the project path is the reliable location
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try:
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path = board.get_project().path
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if path and Path(path).is_dir():
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return Path(path)
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except Exception:
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pass
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try:
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filename = getattr(board.document, "board_filename", "") or ""
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if Path(filename).is_absolute():
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return Path(filename).parent
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except Exception:
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pass
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return Path.cwd()
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# --- stackup geometry --------------------------------------------------------
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@dataclass
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class StackupInfo:
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names: list[str] # copper layers, top to bottom
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thickness_nm: dict[str, int]
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z_nm: dict[str, int] # copper center depth
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z_bot_nm: int # total stack thickness
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def get_stackup_info(board: Board) -> StackupInfo:
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names: list[str] = []
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thickness: dict[str, int] = {}
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z_center: dict[str, int] = {}
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z = 0
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for sl in board.get_stackup().layers:
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t = int(sl.thickness or 0)
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if sl.type == BoardStackupLayerType.BSLT_COPPER:
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name = canonical_name(sl.layer)
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if t <= 0:
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t = int(config.FALLBACK_THICKNESS_UM * 1000)
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print(f"warning: stackup gives no thickness for {name}; "
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f"assuming {config.FALLBACK_THICKNESS_UM} um")
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names.append(name)
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thickness[name] = t
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z_center[name] = z + t // 2
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z += t
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if not names:
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raise CandidateError(
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"Could not read any copper layer from the board stackup."
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)
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return StackupInfo(names=names, thickness_nm=thickness, z_nm=z_center,
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z_bot_nm=z)
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# --- electrodes from selection ----------------------------------------------
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def _box2_to_rect(box, layer_name: str) -> Rect:
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try:
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pos, size = box.pos, box.size
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return Rect.normalized(pos.x, pos.y, pos.x + size.x, pos.y + size.y,
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layer_name)
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except AttributeError:
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c, s = box.center, box.size
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return Rect.normalized(c.x - s.x // 2, c.y - s.y // 2,
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c.x + s.x // 2, c.y + s.y // 2, layer_name)
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def _convert_poly(poly_with_holes) -> Polygon:
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def ring(polyline):
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nodes = []
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for node in polyline.nodes:
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if node.has_point:
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nodes.append(("pt", (node.point.x, node.point.y)))
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elif node.has_arc:
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arc = node.arc
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nodes.append(("arc", ((arc.start.x, arc.start.y),
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(arc.mid.x, arc.mid.y),
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(arc.end.x, arc.end.y))))
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return linearize_ring(nodes, ARC_TOL_NM)
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return Polygon(outline=ring(poly_with_holes.outline),
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holes=[ring(h) for h in poly_with_holes.holes])
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def _pad_drill_nm(pad_or_via) -> int:
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try:
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return int(pad_or_via.padstack.drill.diameter.x)
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except Exception:
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return 0
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def _pad_default_contact(pad: Pad) -> str:
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if _pad_drill_nm(pad) > 0:
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return "all" # through-hole: contacts the stack
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try:
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copper = [canonical_name(l) for l in pad.padstack.layers
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if is_copper_layer(l)]
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if len(copper) == 1:
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return copper[0] # SMD: its own layer
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except Exception:
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pass
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return "all"
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def _pad_polygons(board: Board, pad: Pad, contact: str) -> list[Polygon] | None:
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layer_ids = []
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if contact != "all":
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try:
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layer_ids.append(layer_from_canonical_name(contact))
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except Exception:
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pass
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for name in ("F.Cu", "B.Cu"):
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try:
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layer_ids.append(layer_from_canonical_name(name))
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except Exception:
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pass
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for lid in layer_ids:
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try:
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shape = board.get_pad_shapes_as_polygons(pad, layer=lid)
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if shape is not None:
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return [_convert_poly(shape)]
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except Exception:
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continue
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return None
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def _footprint_pad_map(footprints) -> dict:
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"""(x, y, number) -> owning FootprintInstance. Footprint pads are
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stored with absolute positions, so the lookup is exact."""
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out = {}
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for fp in footprints or []:
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try:
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for fpad in fp.definition.pads:
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out[(fpad.position.x, fpad.position.y, fpad.number)] = fp
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except Exception:
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continue
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return out
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def _pad_owner(pad: Pad, pad_map: dict):
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return pad_map.get((pad.position.x, pad.position.y, pad.number))
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def _tht_protrusion_side(pad: Pad, pad_map: dict, quiet: bool = False) -> str:
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"""Outer layer where the clipped THT lead protrudes (tent + solder
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cone): the side OPPOSITE the component. Unknown owner -> assume the
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component sits on F.Cu (lead tents on B.Cu)."""
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fp = _pad_owner(pad, pad_map)
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if fp is not None:
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try:
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side = canonical_name(fp.layer)
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return "F.Cu" if side == "B.Cu" else "B.Cu"
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except Exception:
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pass
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if not quiet:
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print(f"note: no footprint found for pad {pad.number} - assuming "
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f"its lead protrudes on B.Cu")
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return "B.Cu"
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def _to_electrode(board: Board, item, stackup: StackupInfo | None = None,
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pad_map: dict | None = None) -> Electrode:
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if isinstance(item, BoardRectangle):
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tl, br = item.top_left, item.bottom_right
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rect = Rect.normalized(tl.x, tl.y, br.x, br.y,
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canonical_name(item.layer))
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cx = (rect.x0 + rect.x1) / 2e6
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cy = (rect.y0 + rect.y1) / 2e6
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return Electrode(rect=rect, contact="all",
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label=f"rect({cx:.1f},{cy:.1f})")
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if isinstance(item, Via):
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via: Via = item
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x, y = via.position.x, via.position.y
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drill = int(via.drill_diameter or 0) or _pad_drill_nm(via)
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if drill <= 0:
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raise SelectionError(
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f"Selected via at ({x / 1e6:.2f}, {y / 1e6:.2f}) mm has no "
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f"drill diameter - cannot use it as a contact.")
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pad_nm = _padstack_pad_nm(via)
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r = max(pad_nm, drill) // 2
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rect = Rect.normalized(x - r, y - r, x + r, y + r, "via")
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return Electrode(
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rect=rect, contact="all", label=f"via({x / 1e6:.1f},{y / 1e6:.1f})",
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drill_nm=drill, pad_nm=pad_nm, center=(x, y),
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barrel_z=(_padstack_span(via.padstack, stackup)
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if stackup is not None else None))
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# Pad
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pad: Pad = item
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contact = _pad_default_contact(pad)
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net = pad.net.name if pad.net is not None else "?"
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label = f"pad {pad.number}@{net}"
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box = board.get_item_bounding_box(pad)
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if box is None:
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raise SelectionError(f"Could not get the bounding box of {label}.")
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rect = _box2_to_rect(box, "pad")
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drill = _pad_drill_nm(pad)
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return Electrode(rect=rect, contact=contact,
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polygons=_pad_polygons(board, pad, contact), label=label,
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# through-hole pad: current enters at the soldered
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# barrel; the joint is solder-filled + pad-coated,
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# with a solder cone around the protruding lead
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drill_nm=drill, pad_nm=_padstack_pad_nm(pad),
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center=(pad.position.x, pad.position.y),
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solder=drill > 0,
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protrusion_side=(_tht_protrusion_side(pad, pad_map or {})
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if drill > 0 else None))
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def _net_hint_of(items: list) -> str | None:
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for item in items:
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if item.net is not None:
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return item.net.name
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return None
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def get_electrodes(board: Board, stackup: StackupInfo | None = None
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) -> tuple[list[Electrode], list[Electrode], str | None]:
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"""Terminals from the selection. Each terminal may have MULTIPLE parts
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(all merged into one externally-bonded contact):
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- rectangles on ELECTRODE_POS_LAYER -> V+ parts, on ELECTRODE_NEG_LAYER
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-> V- parts; selected pads/vias fill a side that has no rectangles;
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- no marker rectangles selected: legacy mode, exactly 2 items
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(rects/pads/vias, any layer) -> one part each;
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- empty selection: board-wide scan of both marker layers.
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Selected vias and through-hole pads become BARREL contacts: current
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enters at the drill-wall ring (the soldered lead/wire), not the pad
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face. Draw a marker rectangle over the pad instead to model a probe
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pressed onto the pad face.
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"""
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pos_l = config.ELECTRODE_POS_LAYER
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neg_l = config.ELECTRODE_NEG_LAYER
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scheme = (f"Draw V+ rectangle(s) on {pos_l} and V- rectangle(s) on "
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f"{neg_l} (axis-aligned), and/or select pads/vias for a side "
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f"without rectangles.")
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selection = list(board.get_selection())
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rects = [s for s in selection if isinstance(s, BoardRectangle)]
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pads = [s for s in selection if isinstance(s, (Pad, Via))]
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# protrusion-side lookup needs the owning footprints (THT pads only)
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pad_map = (_footprint_pad_map(board.get_footprints())
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if any(isinstance(s, Pad) and _pad_drill_nm(s) > 0
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for s in pads) else {})
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if not selection:
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allr = [s for s in board.get_shapes() if isinstance(s, BoardRectangle)]
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pos = [r for r in allr if canonical_name(r.layer) == pos_l]
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neg = [r for r in allr if canonical_name(r.layer) == neg_l]
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if pos and neg:
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print(f"selection empty - using {len(pos)} rectangle(s) on "
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f"{pos_l} as V+ and {len(neg)} on {neg_l} as V-")
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return ([_to_electrode(board, r) for r in pos],
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[_to_electrode(board, r) for r in neg], None)
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raise SelectionError(
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f"Nothing selected, and the board-wide scan found "
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f"{len(pos)} rectangle(s) on {pos_l} / {len(neg)} on {neg_l} "
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f"(need at least one on each).\n{scheme}"
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)
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pos = [r for r in rects if canonical_name(r.layer) == pos_l]
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neg = [r for r in rects if canonical_name(r.layer) == neg_l]
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other = [r for r in rects if canonical_name(r.layer) not in (pos_l, neg_l)]
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if pos or neg:
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if other:
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raise SelectionError(
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f"{len(other)} selected rectangle(s) are on neither marker "
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f"layer ({pos_l} = V+, {neg_l} = V-). {scheme}"
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)
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es1 = [_to_electrode(board, r) for r in pos]
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es2 = [_to_electrode(board, r) for r in neg]
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if pads and es1 and es2:
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raise SelectionError(
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f"Cannot assign the {len(pads)} selected pad(s)/via(s): both "
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f"marker layers already provide rectangles. Use pads/vias "
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f"only for a side that has none."
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)
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if pads:
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pad_parts = [_to_electrode(board, p, stackup, pad_map)
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for p in pads]
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if not es1:
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es1 = pad_parts
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else:
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es2 = pad_parts
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if es1 and es2:
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return es1, es2, _net_hint_of(pads)
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raise SelectionError(
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f"Only one terminal defined: V+ has {len(es1)} and V- has "
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f"{len(es2)} contact(s). {scheme}"
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)
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items = rects + pads
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if len(items) == 2:
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return ([_to_electrode(board, items[0], stackup, pad_map)],
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[_to_electrode(board, items[1], stackup, pad_map)],
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_net_hint_of(pads))
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raise SelectionError(
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f"The selection has {len(rects)} rectangle(s) (none on the marker "
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f"layers) and {len(pads)} pad(s)/via(s); without marker layers "
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f"exactly 2 contacts are needed.\n{scheme}"
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)
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# --- fills -------------------------------------------------------------------
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def gather_net_fills(board: Board) -> dict[str, dict[str, list[Polygon]]]:
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"""net -> layer_name -> merged fill polygons (non-empty only)."""
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fills: dict[str, dict[str, list[Polygon]]] = {}
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for zone in board.get_zones():
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# teardrop fills are conducting copper too, but KiCad types them
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# ZT_TEARDROP instead of ZT_COPPER
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if zone.type not in (ZoneType.ZT_COPPER, ZoneType.ZT_TEARDROP):
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continue
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net = zone.net.name if zone.net is not None else "<no net>"
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for layer, polys in zone.filled_polygons.items():
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if not is_copper_layer(layer) or not polys:
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continue
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fills.setdefault(net, {}).setdefault(
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canonical_name(layer), []).extend(
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_convert_poly(p) for p in polys)
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return fills
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def gather_net_tracks(board: Board) -> dict[str, dict[str, list[TrackSeg]]]:
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"""net -> layer -> TrackSeg (centerline + width). Traces conduct
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together with the zone fills; the raster decides per run whether a
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trace is rasterized from its outline or becomes a 1D chain."""
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out: dict[str, dict[str, list[TrackSeg]]] = {}
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for t in board.get_tracks():
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if not is_copper_layer(t.layer):
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continue
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width = int(t.width or 0)
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if width <= 0:
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continue
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if isinstance(t, ArcTrack):
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pts = np.array([[t.start.x, t.start.y], [t.mid.x, t.mid.y],
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[t.end.x, t.end.y]], dtype=np.int64)
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else:
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pts = np.array([[t.start.x, t.start.y], [t.end.x, t.end.y]],
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dtype=np.int64)
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net = t.net.name if t.net is not None else "<no net>"
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layer = canonical_name(t.layer)
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out.setdefault(net, {}).setdefault(layer, []).append(
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TrackSeg(layer_name=layer, points=pts, width_nm=width))
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return out
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def tracks_as_polygons(tracks: dict) -> dict:
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"""net -> layer -> outline polygons of the tracks (for the bbox-based
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candidate detection; the Problem keeps the TrackSegs themselves)."""
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return {
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net: {layer: [Polygon(outline=seg.outline(ARC_TOL_NM))
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for seg in segs]
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for layer, segs in per_layer.items()}
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for net, per_layer in tracks.items()
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}
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def merge_copper(fills: dict, tracks: dict) -> dict:
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"""net -> layer -> fill + track polygons, for candidate detection
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and the dialog's layer lists (build_problem merges the same way)."""
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out: dict[str, dict[str, list[Polygon]]] = {}
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for src in (fills, tracks):
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for net, per_layer in src.items():
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for layer, polys in per_layer.items():
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out.setdefault(net, {}).setdefault(layer, []).extend(polys)
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return out
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def _rect_overlaps(rect: Rect, polygons: list[Polygon]) -> bool:
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for p in polygons:
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px0, py0 = p.outline.min(axis=0)
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px1, py1 = p.outline.max(axis=0)
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if rect.x0 <= px1 and rect.x1 >= px0 and rect.y0 <= py1 and rect.y1 >= py0:
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return True
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return False
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def nets_overlapping(fills: dict, es1: list[Electrode],
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es2: list[Electrode]) -> list[str]:
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"""Nets whose fills overlap both terminals (any part, any layer each -
|
|
the connection may go through vias). Permissive bbox prefilter."""
|
|
out = []
|
|
for net, per_layer in fills.items():
|
|
hit1 = any(_rect_overlaps(e.rect, polys) for e in es1
|
|
for polys in per_layer.values())
|
|
hit2 = any(_rect_overlaps(e.rect, polys) for e in es2
|
|
for polys in per_layer.values())
|
|
if hit1 and hit2:
|
|
out.append(net)
|
|
return sorted(out)
|
|
|
|
|
|
def gather_mask_buildups(board: Board) -> dict[str, list[Polygon]]:
|
|
"""Zones on F.Mask/B.Mask (mask openings) -> fill polygons keyed by
|
|
the outer copper layer they expose."""
|
|
out: dict[str, list[Polygon]] = {}
|
|
for zone in board.get_zones():
|
|
try:
|
|
filled = zone.filled_polygons
|
|
except Exception:
|
|
continue
|
|
for layer, polys in filled.items():
|
|
copper = MASK_TO_COPPER.get(canonical_name(layer))
|
|
if copper and polys:
|
|
out.setdefault(copper, []).extend(
|
|
_convert_poly(p) for p in polys)
|
|
return out
|
|
|
|
|
|
def any_zone_unfilled(board: Board) -> bool:
|
|
return any(z.type in (ZoneType.ZT_COPPER, ZoneType.ZT_TEARDROP)
|
|
and not z.filled for z in board.get_zones())
|
|
|
|
|
|
def refill(board: Board) -> None:
|
|
print("refilling zones - this modifies the open document ...")
|
|
board.refill_zones(block=True)
|
|
|
|
|
|
# --- barrels -----------------------------------------------------------------
|
|
|
|
def _padstack_pad_nm(item) -> int:
|
|
"""Largest copper pad diameter of a via/pad padstack; 0 if unknown.
|
|
Used to bound the barrel-to-fill connection search in the solver."""
|
|
try:
|
|
sizes = [max(int(l.size.x), int(l.size.y))
|
|
for l in item.padstack.copper_layers]
|
|
return max(sizes) if sizes else 0
|
|
except Exception:
|
|
return 0
|
|
|
|
|
|
def _padstack_span(padstack, stackup: StackupInfo) -> tuple[int, int]:
|
|
"""(z_top, z_bot) of the barrel; falls back to the full stack."""
|
|
try:
|
|
copper = [canonical_name(l) for l in padstack.layers
|
|
if is_copper_layer(l)]
|
|
zs = [stackup.z_nm[c] for c in copper if c in stackup.z_nm]
|
|
if len(zs) >= 2:
|
|
return min(zs) - 1, max(zs) + 1
|
|
except Exception:
|
|
pass
|
|
return -1, stackup.z_bot_nm + 1
|
|
|
|
|
|
def gather_barrels(board: Board, net_name: str,
|
|
stackup: StackupInfo) -> list[ViaLink]:
|
|
barrels = []
|
|
for via in board.get_vias():
|
|
if via.net is None or via.net.name != net_name:
|
|
continue
|
|
drill = int(via.drill_diameter or 0) or _pad_drill_nm(via)
|
|
if drill <= 0:
|
|
continue
|
|
z_top, z_bot = _padstack_span(via.padstack, stackup)
|
|
barrels.append(ViaLink(x=via.position.x, y=via.position.y,
|
|
drill_nm=drill, z_top_nm=z_top,
|
|
z_bot_nm=z_bot, kind="via",
|
|
pad_nm=_padstack_pad_nm(via)))
|
|
if config.INCLUDE_TH_PADS:
|
|
net_pads = [pad for pad in board.get_pads()
|
|
if pad.net is not None and pad.net.name == net_name
|
|
and _pad_drill_nm(pad) > 0]
|
|
# populated (non-DNP) THT pads carry a soldered joint: filled
|
|
# hole + coat + lead cone on the side opposite the component
|
|
pad_map = (_footprint_pad_map(board.get_footprints())
|
|
if net_pads else {})
|
|
unknown = 0
|
|
for pad in net_pads:
|
|
fp = _pad_owner(pad, pad_map)
|
|
unknown += fp is None
|
|
populated = True
|
|
if fp is not None:
|
|
try:
|
|
populated = not fp.attributes.do_not_populate
|
|
except Exception:
|
|
pass
|
|
barrels.append(ViaLink(
|
|
x=pad.position.x, y=pad.position.y,
|
|
drill_nm=_pad_drill_nm(pad), z_top_nm=-1,
|
|
z_bot_nm=stackup.z_bot_nm + 1, kind="pad",
|
|
pad_nm=_padstack_pad_nm(pad),
|
|
solder_filled=populated,
|
|
protrusion_side=(_tht_protrusion_side(pad, pad_map,
|
|
quiet=True)
|
|
if populated else None)))
|
|
if unknown:
|
|
print(f"note: {unknown} THT pad(s) without an identifiable "
|
|
f"footprint - assumed populated, leads on B.Cu")
|
|
return barrels
|
|
|
|
|
|
# --- top level ----------------------------------------------------------------
|
|
|
|
def build_problem(board: Board, net: str, layer_names: list[str],
|
|
es1: list[Electrode], es2: list[Electrode],
|
|
stackup: StackupInfo, fills: dict,
|
|
buildups: dict[str, list[Polygon]] | None = None,
|
|
extra_cu_um: float | None = None,
|
|
tracks: dict | None = None,
|
|
vias_capped: bool | None = None,
|
|
cap_max_drill_mm: float | None = None) -> Problem:
|
|
per_layer = fills.get(net, {})
|
|
per_layer_tracks = (tracks or {}).get(net, {})
|
|
layers = []
|
|
segs: list[TrackSeg] = []
|
|
for name in stackup.names: # keep stackup order
|
|
if name not in layer_names:
|
|
continue
|
|
polys = list(per_layer.get(name, []))
|
|
layer_segs = per_layer_tracks.get(name, [])
|
|
if not polys and not layer_segs:
|
|
print(f"note: net {net} has no copper on {name} - layer skipped")
|
|
continue
|
|
if config.COPPER_THICKNESS_UM is not None:
|
|
t = int(config.COPPER_THICKNESS_UM * 1000)
|
|
else:
|
|
t = stackup.thickness_nm[name]
|
|
layers.append(LayerFill(layer_name=name, thickness_nm=t,
|
|
z_nm=stackup.z_nm[name], polygons=polys))
|
|
segs.extend(layer_segs)
|
|
if not layers:
|
|
raise CandidateError(
|
|
f"Net {net} has no fill on any of the selected layers "
|
|
f"({', '.join(layer_names)})."
|
|
)
|
|
# barrels matter on a single layer too: via rings + drill mouths
|
|
# perforate the plane, THT joints locally stiffen it
|
|
vias = gather_barrels(board, net, stackup)
|
|
included = {l.layer_name for l in layers}
|
|
buildup_list = [
|
|
SurfaceBuildup(layer_name=name, polygons=polys)
|
|
for name, polys in (buildups or {}).items() if name in included
|
|
]
|
|
print(f"net {net}: {len(layers)} layer(s) "
|
|
f"({', '.join(l.layer_name for l in layers)}), "
|
|
f"{len(segs)} track(s), {len(vias)} via/pad barrel(s)"
|
|
+ (f", solder buildup on "
|
|
f"{', '.join(b.layer_name for b in buildup_list)}"
|
|
if buildup_list else ""))
|
|
problem = Problem(
|
|
board_path=board.name or "",
|
|
net_name=net,
|
|
rho_ohm_m=config.RHO_CU_OHM_M,
|
|
plating_nm=int(config.VIA_PLATING_UM * 1000),
|
|
layers=layers,
|
|
vias=vias,
|
|
electrodes1=es1,
|
|
electrodes2=es2,
|
|
thickness_source=("override" if config.COPPER_THICKNESS_UM is not None
|
|
else "stackup"),
|
|
buildups=buildup_list,
|
|
solder_thickness_nm=int(config.SOLDER_THICKNESS_UM * 1000),
|
|
solder_rho_ohm_m=config.SOLDER_RHO_OHM_M,
|
|
extra_cu_nm=int((extra_cu_um if extra_cu_um is not None
|
|
else config.BUILDUP_EXTRA_CU_UM) * 1000),
|
|
tracks=segs,
|
|
vias_capped=(vias_capped if vias_capped is not None
|
|
else config.VIAS_CAPPED),
|
|
cap_plating_nm=int(config.CAP_PLATING_UM * 1000),
|
|
cap_max_drill_nm=int((cap_max_drill_mm if cap_max_drill_mm is not None
|
|
else config.CAP_MAX_DRILL_MM) * 1e6),
|
|
tht_protrusion_nm=int(config.THT_LEAD_PROTRUSION_MM * 1e6),
|
|
)
|
|
solder_layers = contact_solder_buildups(problem)
|
|
if solder_layers:
|
|
sides = sorted({e.protrusion_side
|
|
for e in problem.electrodes1 + problem.electrodes2
|
|
if e.solder and e.protrusion_side})
|
|
cone = (f", {config.THT_LEAD_PROTRUSION_MM:g} mm lead + solder cone "
|
|
f"on {', '.join(sides)}"
|
|
if sides and problem.tht_protrusion_nm > 0 else "")
|
|
print(f"THT contact(s): solder-filled hole + "
|
|
f"{config.SOLDER_THICKNESS_UM:g} um average solder coat on the "
|
|
f"pad face ({', '.join(solder_layers)}){cone}")
|
|
tht_joint_buildups(problem)
|
|
n_joint = sum(1 for v in problem.vias
|
|
if v.kind == "pad" and v.solder_filled)
|
|
n_dnp = sum(1 for v in problem.vias
|
|
if v.kind == "pad" and not v.solder_filled)
|
|
if n_joint or n_dnp:
|
|
print(f"{n_joint} populated THT pad joint(s): solder-filled hole + "
|
|
f"coat + lead cone"
|
|
+ (f"; {n_dnp} DNP pad(s) plating-only" if n_dnp else ""))
|
|
return problem
|
|
|
|
|
|
if __name__ == "__main__":
|
|
import sys
|
|
|
|
from .geometry import save_problem
|
|
|
|
out = Path(sys.argv[1]) if len(sys.argv) > 1 else Path("geometry_dump.json")
|
|
_, board = connect()
|
|
stackup = get_stackup_info(board)
|
|
es1, es2, net_hint = get_electrodes(board, stackup)
|
|
if any_zone_unfilled(board):
|
|
refill(board)
|
|
fills = gather_net_fills(board)
|
|
tracks = gather_net_tracks(board) if config.INCLUDE_TRACKS else {}
|
|
copper = merge_copper(fills, tracks_as_polygons(tracks))
|
|
nets = nets_overlapping(copper, es1, es2)
|
|
if len(sys.argv) > 2:
|
|
net = sys.argv[2]
|
|
elif net_hint in nets:
|
|
net = net_hint
|
|
elif len(nets) == 1:
|
|
net = nets[0]
|
|
else:
|
|
print(f"candidate nets: {nets}; pass one as second argument")
|
|
sys.exit(1)
|
|
problem = build_problem(board, net, list(copper.get(net, {})), es1, es2,
|
|
stackup, fills, tracks=tracks)
|
|
save_problem(problem, out)
|
|
print(f"wrote {out}")
|