PCB Layout Reviewer
SkillMediaAudit, finish, or port PCB placement and routing using circuit intent, mechanical constraints, sourcing evidence, native DRC/connectivity, rendered views, and manufacturing feedback. Use before routing, after autorouting, before fabrication release, when adapting a proven board to another connector, enclosure, platform, or regional variant, or when reviewing layers, GND references, power distribution, decoupling, buses, controlled interfaces, RF keepouts, vias, cost-driving features, opens, or DRC findings.
Available today. Use it from your connected AI after setup.
No other account needed.
Connect ahel once, and every AI you use reads what you have installed.
Then ask your AI: use the PCB Layout Reviewer skill
What this skill tells your AI
The instructions your AI receives, as published by keitark/pcba-design-skills in .agents/skills/pcb-layout-review/SKILL.md and read by ahel’s review.
Use the humanized architecture and circuit constraints as placement policy, not reference-number order or one global wire-length score. Read references/layout-review-checklist.md and references/proven-lessons.md. Record the gate with references/layout-review-record.md and select an evidence path from references/eda-adapters.md. For modules, card sockets, daughtercards, or dense connector fanout, also read references/connector-stack-and-fanout.md. For a derivative board, also read references/variant-porting.md.
Establish truth
- Read repository rules, native board/project sources, product brief, architecture, sourcing lock, circuit review, schematic/netlist, mechanics, enclosure, manufacturer constraints, and project-local layout lessons.
- Identify the board source of truth and supported adapter. KiCad may use native CLI/API tooling; other EDA tools require equivalent native exports. Gerber or images alone permit review, not safe editable round-trip.
- Record board/project hashes, layer stack, net classes, rules, placement, connectivity, raw DRC, classified DRC, via/drill histogram, and top/bottom renders before changing anything.
- Record connector maturity and every assembly dimension as measured, drawing-derived, inferred, or TBD. Treat a plausible model as visual evidence, not mechanical proof.
- Distinguish hard constraints from negotiable targets. Never trade a short, new open, corrupted return path, unsupported pad, keepout violation, unsafe ownership state, or fabrication violation for a better score.
Port a derivative variant
- Freeze and hash the proven donor. Write an explicit delta for connector pin order and pitch, removed/added functions, power and audio paths, outline, mating datum, tongue, shell features, keepouts, and assembly constraints.
- Treat the port as a constraint remap, not a crop, scale, or pin-count swap. Preserve the mating edge and add area only in a mechanically verified direction.
- Reuse functional blocks, pin-bank orientation, local support relationships, and proven topology rather than absolute coordinates. Re-run architecture, mechanics, power/reference, and placement gates on the variant.
- Geometry-lock every candidate. Integrate a coupled corridor donor as one atomic net set and prove every displaced or non-whitelisted net.
- Diagnose an autorouter from its actual input/output: verify target pins, fixed versus movable scopes, target-route occurrences, and whether the minimum blocker was allowed to move.
- Compare donor and variant with one orthographic physical scale and explicit dimensions. Independently fitted screenshots are not size evidence.
Review in order
- Architecture placement: align external connector pin order with functional corridors; place protection, translation, processing, memory, and outputs along real flow. Keep ownership and reset controls direct.
- Critical locality: decoupling in the supply-pin escape path, tight regulator loops, correct crystals/feedback, connector protection, antenna edge/keepout, user access, thermal paths, and enclosure clearance. Before signal routing, prove that every dense connector/module power and GND pad has a legal standard-process escape or an approved process exception.
- Layer and reference strategy: choose layer count from bus density, routing channels, return paths, RF, controlled interfaces, power current, board size, and fabrication cost. A solid reference plane is normally more valuable than a dedicated low-current power plane; never assume four or six layers without analysis.
- Routing: preserve continuous return paths, short critical controls, sensible topology, no stubs where forbidden, appropriate width/spacing, matched pairs/groups only when budgets require them, and legal transitions.
- Power and zones: prove every rail and GND pad reaches the intended network. Same net name, overlapping fill, or zero pad-opens is not proof.
- Manufacturing: compare trace/space, annulus, mechanical drill, via type, finish, thickness, impedance, and other cost thresholds with the current fabricator quote. Treat premium features as measured DFM feedback, not an automatic reason to weaken electrical constraints.
- Independent visual pass: inspect clean 2D views, each signal layer, and
fresh top/bottom 3D renders. Verify bodies, pin 1, polarity, connector
overhang, pad support, antenna, outline, keepouts, silkscreen, and mechanics.
Run silk-over-silk, silk-over-copper, and edge-clearance checks before the
visual pass; preserve pin-1, polarity, and functional meaning, and leave
unresolved dense labels at
USER_REVIEW.
Experiment safely
Use named candidate states and paired project files. Make one coherent change,
then measure raw disconnects, real DRC, power disconnects, layout gates, and
manufacturing defects. Record it with scripts/score_experiment.py; write new
project-specific lessons with scripts/record_lesson.py. Both default to
.pcba-workflow/ and never mutate the installed skill.
Freeze the input and compare stackup, outline, via-process, and routing experiments with the current best safe candidate using the complete gate vector. A larger board or extra layer is useful only when it removes a measured blocker without regressing another gate.
Prefer high-scoring applicable methods. Do not repeat a negative method unless conditions materially changed. An accepted candidate must be a measured net improvement and may not add opens, real DRC, power disconnects, or verified manufacturing defects. A successful route for one trapped net is not promotable when its coupled donor set is incomplete or another lane becomes stranded.
In a recorded workflow, preserve hash-bound frames for initial placement, placement freeze, meaningful accepted/rejected experiments, final routing, individual signal layers, DRC/connectivity proof, and top/bottom 3D. Record actual regressions when they teach something, but never introduce a defect for the video. Keep every frame tied to the paired native board/project state.
Release gate
Require zero unexplained raw disconnects, zero real DRC errors, zero power
disconnects, all project layout checks passing, verified planes/critical nets,
and visual/mechanical/silkscreen PASS in the same saved board/project state.
If assembly depends on an unverified connector body, card thickness, insertion
depth, retention feature, or enclosure stack, the result remains
USER_REVIEW or BLOCKED even when DRC is clean.
Document only narrow, evidence-backed waivers in
.pcba-workflow/layout-review.json. Hand the result to
$release-pcba-fabrication; supplier CPL interpretation remains a separate
$operate-jlcpcb-order gate.
Signals
- GitHub stars
- 21
- Forks
- 5
- Last commit
- Sep 2026
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pcb-layout-review- Source
- github.com/keitark/pcba-design-skills