Wire the adaptive quadtree grid into the solve path (phase 2)
config.ADAPTIVE_CELLS (dialog checkbox "adaptive cells", off by default; standalone --adaptive) routes run_solve through fill_resistance/adaptive.py: per-layer balanced leaf grids where every non-uniform fine cell (electrodes, 1D chain cells, buildup, via-mouth thickness map) is pinned at the fine size, leaf faces via the series-half-cell rule, chain links and barrels re-attached by node id, connectivity restriction and both contact models on the leaf graph via solver cores extracted for reuse (_equipotential_core, _uniform_core, _conductance_params, _barrel_links). All fields (V, |J|, power density) are computed per leaf and expanded to the fine grid, so plots, summary and dumps are unchanged. Element sizes: minimum = the grid cell size itself (auto / dialog / CELL_UM_OVERRIDE); maximum = ADAPTIVE_MAX_CELL_UM (2 mm default); ADAPTIVE_GUARD sets the clearance a block needs to grow. Measured end-to-end (feature-dense 120x120 plate, h=50um): 25.9 s -> 5.4 s, 5.58M -> 823k unknowns, R -1.1%. Accuracy documented honestly: coarse-fine interfaces carry a first-order tangential flux error biasing R low by ~0.5-2% depending on geometry (worst on narrow strips); the earlier assumption that linear fields solve exactly on the leaf graph was wrong - offset centers across size transitions leave an unpaired residue. Gradient-corrected interface fluxes remain as phase 4 if tighter accuracy per leaf is needed. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
This commit is contained in:
@@ -0,0 +1,156 @@
|
||||
"""Adaptive solve path (phase 2): full run_solve equivalence against the
|
||||
uniform grid across the feature set. On piecewise-linear fields (strips)
|
||||
the leaf system is EXACT, so those compare at solver precision."""
|
||||
import numpy as np
|
||||
import pytest
|
||||
|
||||
from fill_resistance import config, raster, solver
|
||||
from fill_resistance.geometry import Electrode, LayerFill, Polygon, Problem, \
|
||||
TrackSeg
|
||||
from tests.test_capping import _two_layer
|
||||
from tests.util import NM, make_multilayer, make_problem, rect_mm, \
|
||||
strip_problem
|
||||
|
||||
|
||||
def _run(problem, h_mm, model="equipotential", adaptive=False,
|
||||
monkeypatch=None, parts=False, freq=0.0):
|
||||
if monkeypatch is not None:
|
||||
monkeypatch.setattr(config, "ADAPTIVE_CELLS", adaptive)
|
||||
stack = raster.rasterize_stack(problem, h_mm * NM)
|
||||
e1, e2 = raster.electrode_masks(stack, problem)
|
||||
kw = {}
|
||||
if parts:
|
||||
p1, p2 = raster.electrode_partition(stack, problem)
|
||||
kw = dict(parts1=p1, parts2=p2)
|
||||
return solver.run_solve(problem, stack, e1, e2, 1.0, freq,
|
||||
contact_model=model, **kw)
|
||||
|
||||
|
||||
def test_strip_close_both_models(monkeypatch):
|
||||
"""Uniform strip, both contact models. Coarse-fine interfaces carry
|
||||
a first-order tangential flux error (laterally offset leaf centers),
|
||||
so adaptive R sits up to ~2% LOW of the production R - the narrow
|
||||
strip is the worst case (transition rings span most of the width)."""
|
||||
for model in ("equipotential", "uniform"):
|
||||
p = strip_problem(length=50, width=10, e_len=5)
|
||||
ref = _run(p, 0.25, model, adaptive=False, monkeypatch=monkeypatch)
|
||||
p2 = strip_problem(length=50, width=10, e_len=5)
|
||||
ada = _run(p2, 0.25, model, adaptive=True, monkeypatch=monkeypatch)
|
||||
assert ada.R_ohm == pytest.approx(ref.R_ohm, rel=0.02), model
|
||||
assert ada.R_ohm <= ref.R_ohm * 1.001 # bias is low, not high
|
||||
assert ada.n_free < ref.n_free
|
||||
assert ada.power_balance_rel < 1e-9
|
||||
|
||||
|
||||
def test_plate_with_holes_close(monkeypatch):
|
||||
holes = []
|
||||
for i in range(5):
|
||||
for j in range(5):
|
||||
x, y = 8 * i + 3, 8 * j + 3
|
||||
holes.append([(x, y), (x + 1, y), (x + 1, y + 1), (x, y + 1)])
|
||||
outline = [(0, 0), (40, 0), (40, 40), (0, 40)]
|
||||
|
||||
def prob():
|
||||
return make_problem([(outline, holes)], rect1_mm=(0, 15, 2, 25),
|
||||
rect2_mm=(38, 15, 40, 25))
|
||||
|
||||
ref = _run(prob(), 0.1, adaptive=False, monkeypatch=monkeypatch)
|
||||
ada = _run(prob(), 0.1, adaptive=True, monkeypatch=monkeypatch)
|
||||
assert ada.n_free < 0.5 * ref.n_free
|
||||
assert ada.R_ohm == pytest.approx(ref.R_ohm, rel=0.01)
|
||||
|
||||
|
||||
def test_via_chain_exact(monkeypatch):
|
||||
"""1-cell strips + via: everything is keep-fine or boundary, so the
|
||||
adaptive path must reproduce the exact discrete solution."""
|
||||
STRIP = [(0, 0), (10, 0), (10, 1), (0, 1)]
|
||||
|
||||
def prob():
|
||||
return make_multilayer(
|
||||
[[(STRIP, [])], [(STRIP, [])]],
|
||||
rect1_mm=(0, 0, 1, 1), rect2_mm=(9, 0, 10, 1),
|
||||
contact1="L0", contact2="L1",
|
||||
vias_mm=[(5.5, 0.5)], gap_mm=1.0)
|
||||
|
||||
ref = _run(prob(), 1.0, adaptive=False, monkeypatch=monkeypatch)
|
||||
ada = _run(prob(), 1.0, adaptive=True, monkeypatch=monkeypatch)
|
||||
assert ada.R_ohm == pytest.approx(ref.R_ohm, rel=1e-9)
|
||||
assert len(ada.via_reports) == 1
|
||||
assert ada.via_reports[0].current_a == pytest.approx(1.0, rel=1e-9)
|
||||
|
||||
|
||||
def test_1d_trace_bridge(monkeypatch):
|
||||
"""Sub-resolution trace bridging two pours: chain cells are pinned
|
||||
fine, pours coarsen; R matches the uniform grid closely."""
|
||||
pour1 = [(0, 0), (30, 0), (30, 30), (0, 30)]
|
||||
pour2 = [(50, 0), (80, 0), (80, 30), (50, 30)]
|
||||
|
||||
def prob():
|
||||
seg = TrackSeg(layer_name="F.Cu",
|
||||
points=np.array([[15 * NM, 15 * NM],
|
||||
[65 * NM, 15 * NM]], dtype=np.int64),
|
||||
width_nm=int(0.2 * NM))
|
||||
return Problem(
|
||||
board_path="synthetic", net_name="TEST", rho_ohm_m=1.68e-8,
|
||||
plating_nm=18_000,
|
||||
layers=[LayerFill(
|
||||
layer_name="F.Cu", thickness_nm=70_000, z_nm=0,
|
||||
polygons=[Polygon(outline=(np.array(pour1) * NM
|
||||
).astype(np.int64)),
|
||||
Polygon(outline=(np.array(pour2) * NM
|
||||
).astype(np.int64))])],
|
||||
vias=[],
|
||||
electrodes1=[Electrode(rect=rect_mm((0, 10, 2, 20)))],
|
||||
electrodes2=[Electrode(rect=rect_mm((78, 10, 80, 20)))],
|
||||
tracks=[seg])
|
||||
|
||||
ref = _run(prob(), 0.5, adaptive=False, monkeypatch=monkeypatch)
|
||||
ada = _run(prob(), 0.5, adaptive=True, monkeypatch=monkeypatch)
|
||||
assert ada.n_free < 0.6 * ref.n_free
|
||||
assert ada.R_ohm == pytest.approx(ref.R_ohm, rel=2e-3)
|
||||
|
||||
|
||||
def test_buildup_close_on_strip(monkeypatch):
|
||||
"""Half-coverage buildup strip: buildup cells are pinned fine; the
|
||||
remaining deviation is the interface flux bias of the plain half."""
|
||||
from tests.test_buildup import _with_buildup
|
||||
|
||||
def prob():
|
||||
return _with_buildup(strip_problem(length=50, width=10, e_len=5),
|
||||
[[(25, 0), (50, 0), (50, 10), (25, 10)]])
|
||||
|
||||
ref = _run(prob(), 0.5, adaptive=False, monkeypatch=monkeypatch)
|
||||
ada = _run(prob(), 0.5, adaptive=True, monkeypatch=monkeypatch)
|
||||
assert ada.R_ohm == pytest.approx(ref.R_ohm, rel=0.02)
|
||||
|
||||
|
||||
def test_capped_via_close(monkeypatch):
|
||||
"""Ring + thin-cap mouth (thick_scale) under the adaptive grid."""
|
||||
ref = _run(_two_layer(drill_mm=2.0, pad_mm=2.6), 0.25,
|
||||
adaptive=False, monkeypatch=monkeypatch)
|
||||
ada = _run(_two_layer(drill_mm=2.0, pad_mm=2.6), 0.25,
|
||||
adaptive=True, monkeypatch=monkeypatch)
|
||||
assert ada.R_ohm == pytest.approx(ref.R_ohm, rel=2e-3)
|
||||
|
||||
|
||||
def test_part_currents_and_ac(monkeypatch):
|
||||
"""Per-part currents and the AC path work on leaves."""
|
||||
p = strip_problem(length=50, width=10, e_len=5)
|
||||
ref = _run(p, 0.5, adaptive=False, monkeypatch=monkeypatch,
|
||||
parts=True, freq=2e6)
|
||||
p2 = strip_problem(length=50, width=10, e_len=5)
|
||||
ada = _run(p2, 0.5, adaptive=True, monkeypatch=monkeypatch,
|
||||
parts=True, freq=2e6)
|
||||
assert ada.R_ohm == pytest.approx(ref.R_ohm, rel=0.02)
|
||||
assert ada.part_currents1[0][1] == pytest.approx(
|
||||
ref.part_currents1[0][1], rel=1e-9) # single part = full current
|
||||
assert ada.rs_ratios == ref.rs_ratios
|
||||
|
||||
|
||||
def test_max_cell_size_respected(monkeypatch):
|
||||
from fill_resistance.adaptive import _max_block
|
||||
assert _max_block(100_000.0) == 16 # 2000 um / 100 um cells
|
||||
monkeypatch.setattr(config, "ADAPTIVE_MAX_CELL_UM", 250.0)
|
||||
assert _max_block(100_000.0) == 2
|
||||
monkeypatch.setattr(config, "ADAPTIVE_MAX_CELL_UM", 50.0)
|
||||
assert _max_block(100_000.0) == 1 # never below the fine cell
|
||||
Reference in New Issue
Block a user