Measure crystal load-cap and track path against max_distance_mm.
X1 uses the same proximity rule as ICs. A detour is shortest path on PCB segments versus that millimetre, not a guessed loop ratio. Co-authored-by: Cursor <cursoragent@cursor.com>
This commit is contained in:
@@ -4,11 +4,14 @@ Runs only when a LayoutGraph is present and a decoupling_proximity rule
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has a numeric max_distance_mm. Null millimetres skip — no 3 mm default.
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Thermal vias (`PS-PLC-002`) skip without courtyard vertices and without
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min_via_count — no invented pad radius. same_layer (`PS-PLC-003`) uses
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the boolean parameter plus footprint layers from the PCB.
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the boolean parameter plus footprint layers from the PCB. Crystals use
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the same decoupling_proximity rule. Track length is shortest path on
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segments vs max_distance_mm — no invented “much larger than euclidean”.
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"""
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from __future__ import annotations
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import heapq
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import math
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from backend.pinscopex.models import (
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@@ -46,6 +49,48 @@ def _dist(a: LayoutPad, b: LayoutPad) -> float:
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return math.hypot(a.x - b.x, a.y - b.y)
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def _xy_key(x: float, y: float) -> tuple[float, float]:
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return (round(x, 3), round(y, 3))
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def _path_mm(layout: LayoutGraph, net: str, a: LayoutPad, b: LayoutPad) -> float | None:
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segs = [s for s in layout.segments if s.net == net]
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if not segs:
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return None
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adj: dict[tuple[float, float], list[tuple[tuple[float, float], float]]] = {}
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for s in segs:
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p = _xy_key(s.start[0], s.start[1])
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q = _xy_key(s.end[0], s.end[1])
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length = math.hypot(s.end[0] - s.start[0], s.end[1] - s.start[1])
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adj.setdefault(p, []).append((q, length))
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adj.setdefault(q, []).append((p, length))
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src = _xy_key(a.x, a.y)
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dst = _xy_key(b.x, b.y)
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if src not in adj or dst not in adj:
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return None
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dist = {src: 0.0}
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heap: list[tuple[float, tuple[float, float]]] = [(0.0, src)]
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while heap:
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d, node = heapq.heappop(heap)
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if d > dist.get(node, math.inf):
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continue
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if node == dst:
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return d
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for nxt, w in adj.get(node, []):
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nd = d + w
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if nd < dist.get(nxt, math.inf):
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dist[nxt] = nd
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heapq.heappush(heap, (nd, nxt))
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return None
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def _reach_mm(layout: LayoutGraph, net: str, a: LayoutPad, b: LayoutPad) -> float:
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path = _path_mm(layout, net, a, b)
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if path is None:
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return _dist(a, b)
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return path
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def _net_for_pin(graph: DesignGraph, ref: str, pin_no: str) -> str | None:
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for net in graph.nets.values():
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for pc in net.pins:
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@@ -63,7 +108,7 @@ def check_placement(
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return []
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findings: list[Finding] = []
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for ref, comp in graph.components.items():
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if comp.component_type != ComponentType.IC:
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if comp.component_type not in (ComponentType.IC, ComponentType.CRYSTAL):
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continue
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cons = _match_constraints(comp.mpn, constraints_map)
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if not cons or not cons.layout_rules:
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@@ -102,7 +147,7 @@ def _decoupling_finding(ref, comp, cons, rule, graph: DesignGraph, layout: Layou
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cap_pads.append(pad)
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if not cap_pads:
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return []
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nearest = min(_dist(ic_pad, p) for p in cap_pads)
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nearest = min(_reach_mm(layout, net, ic_pad, p) for p in cap_pads)
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extracted = rule.get("max_distance_mm")
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if extracted is None:
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return []
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@@ -2,6 +2,13 @@
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What's new in Pinscope.
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## 2.24.0 — 2026-09-10 — Crystal load caps and track path
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Load caps on XIN/XOUT use the same `max_distance_mm` as decoupling. If the PCB has segments on the net, the limit is shortest-path length, not a guessed “loop is too big” ratio.
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- [New] Crystals (`X1` / C9 / C10 on `simple_project`) run `PS-PLC-001` when `layout_rules` has millimetres.
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- [New] Detour tracks: path along segments vs the same `max_distance_mm`. No segments → euclidean pad distance.
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## 2.23.0 — 2026-09-10 — same_layer decoupling
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If `layout_rules` sets `same_layer: true`, a decoupling cap on the opposite copper from the IC is a WARNING. A via inside the courtyard (calculated) is enough. Unset flag → skip.
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@@ -15,6 +15,7 @@ from backend.pinscopex.models import (
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LayoutFootprint,
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LayoutGraph,
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LayoutPad,
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LayoutSegment,
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LayoutVia,
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Pin,
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)
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@@ -140,3 +141,80 @@ def test_opposite_layers_with_via_in_courtyard_is_silent():
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),
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)
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assert all(f.rule_id != "PS-PLC-003" for f in findings)
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def test_simple_project_has_crystal_load_caps():
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g = _graph()
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assert g.components["X1"].mpn == "AV08000301"
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assert "C9" in g.capacitors_on_net("/HFXIN")
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assert "C10" in g.capacitors_on_net("/HFXOUT")
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def _xtal_cons(*, max_distance_mm: float | None):
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mpn = "AV08000301"
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rule: dict = {"kind": "decoupling_proximity", "pin": "1"}
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if max_distance_mm is not None:
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rule["max_distance_mm"] = max_distance_mm
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return {
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mpn: ComponentConstraints(
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mpn=mpn,
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pintable=[Pin(number=1, name="/HFXIN")],
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absolute_maximum_ratings=[],
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rules=[],
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layout_rules=[rule],
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)
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}
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def _x1_c9_layout(*, segments=None, cap_x: float = 0.5):
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return LayoutGraph(
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footprints={
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"X1": LayoutFootprint(
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reference="X1", x=0, y=0, layer="F.Cu",
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pads=[LayoutPad(number="1", x=0.0, y=0.0, net="/HFXIN")],
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),
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"C9": LayoutFootprint(
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reference="C9", x=cap_x, y=0, layer="F.Cu",
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pads=[LayoutPad(number="1", x=cap_x, y=0.0, net="/HFXIN")],
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),
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},
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segments=list(segments or []),
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)
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def test_crystal_load_cap_beyond_max_distance_mm_is_ps_plc_001():
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limit = 2.0
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findings = check_placement(
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_graph(),
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_xtal_cons(max_distance_mm=limit),
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_x1_c9_layout(cap_x=10.0),
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)
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plc = [f for f in findings if f.rule_id == "PS-PLC-001"]
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assert len(plc) == 1
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assert plc[0].designator == "X1"
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assert plc[0].net == "/HFXIN"
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def test_crystal_load_cap_within_max_distance_mm_is_silent():
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assert check_placement(
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_graph(),
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_xtal_cons(max_distance_mm=2.0),
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_x1_c9_layout(cap_x=0.5),
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) == []
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def test_track_path_longer_than_max_distance_mm_is_ps_plc_001():
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limit = 2.0
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segs = [
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LayoutSegment(start=(0.0, 0.0), end=(0.0, 10.0), width=0.2, layer="F.Cu", net="/HFXIN"),
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LayoutSegment(start=(0.0, 10.0), end=(1.0, 10.0), width=0.2, layer="F.Cu", net="/HFXIN"),
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LayoutSegment(start=(1.0, 10.0), end=(1.0, 0.0), width=0.2, layer="F.Cu", net="/HFXIN"),
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]
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findings = check_placement(
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_graph(),
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_xtal_cons(max_distance_mm=limit),
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_x1_c9_layout(cap_x=1.0, segments=segs),
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)
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plc = [f for f in findings if f.rule_id == "PS-PLC-001"]
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assert len(plc) == 1
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assert plc[0].net == "/HFXIN"
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