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ShenShan123
Profil créateur GitHub

ShenShan123

Vue par dépôt de 4 skills collectés dans 1 dépôts GitHub.

skills collectés
4
dépôts
1
mis à jour
2026-07-21
carte des dépôts

Où se trouvent les skills

Principaux dépôts par nombre de skills collectés, avec leur part dans ce catalogue créateur et leur couverture métier.

explorateur de dépôts

Dépôts et skills représentatifs

def-graph
Développeurs de logiciels

Convert clean, signed-off physical-design files (DEF/LEF/liberty/SPEF from an ORFS backend run) into training-ready PyTorch-Geometric graph datasets. Use when the user wants to build a graph dataset from placed-and-routed designs — the five graph views (b–f), the tech-lib/LEF/DEF parser, node/edge feature extraction, or per-cell/per-net labels (congestion, RC parasitics, wirelength, timing, IR drop). Companion to the signoff-loop skill, which produces the physical-design inputs this skill consumes.

2026-07-21
eda-install
Administrateurs de réseaux et de systèmes informatiques

Detect a machine's environment and install + verify the open-source EDA toolchain that the signoff-loop and def-graph skills need — OpenROAD-flow-scripts (openroad/yosys), iverilog, KLayout, Magic, Netgen, OpenSTA, the sky130A PDK, and the torch+torch_geometric graph venv. Use when setting up a new machine, when `check_env.sh` reports missing tools, when the user asks to install/bootstrap/provision the EDA tools or "set up the environment", or when a flow fails because a tool or PDK is absent. Without root it automatically installs a no-sudo path (pre-built conda litex-hub binaries + a venv on a big volume). Produces references/env.local.sh so a bootstrapped toolchain is auto-discovered by the flow skills.

2026-07-21
signoff-loop
Développeurs de logiciels

Drive an open-source EDA workflow from RTL to GDS with full signoff (DRC, LVS, RCX) using OpenROAD-flow-scripts (ORFS), Yosys, KLayout, Magic, Netgen, and OpenRCX — plus a self-improving observation→ingest→act loop that learns repair recipes to eliminate DRC/LVS violations and close timing at the best Fmax. Use when the user wants to turn a hardware spec or RTL into synthesis, place-and-route, GDS output, signoff verification, parasitic extraction, PPA iteration, flow-failure diagnosis, autonomous fix/learn campaigns, or a multi-project dashboard. The clean, signed-off DEF/LEF/SPEF it produces are the inputs to the companion def-graph skill (graph dataset construction).

2026-07-21
rtl-acquire
Développeurs de logiciels

Discover, screen, and acquire RTL at corpus scale (local trees, repo manifests, keyword search) and expand it — synthesis-only, MANY designs per round — into pre-layout netlist_graph.pt PyG graphs with dedup, quality scoring, and publish gating. Use for growing a training corpus of netlist graphs from found RTL. NOT for taking one design to GDS/signoff (that is signoff-loop) and NOT for post-layout graph datasets from DEF/SPEF (that is def-graph).

2026-07-20
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