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Canonical:kevinqz/FastWAM-LIBERO-CoreAI— source of truth.
⚠️ Robot policy — needs a matching robot to actuate. This is lerobot/fastwam_libero_uncond_2cam224 converted to an Apple Core AI.aimodel. Its output is a normalized action chunk for libero_2cam_arm. Run it on any other robot, or with mismatched calibration / normalization stats, and it emits floats that look valid but actuate garbage — the most dangerous silent-failure mode. It is a base checkpoint: fine-tune on your robot's data before expecting useful behavior.
| Field | Value |
|---|---|
| Parameters | 6B |
| Architecture | diffusion |
| Capabilities | vision-language-action, robotics |
| Embodiment | libero_2cam_arm |
| Sampling | flow_matching (20-step) |
| Quantization / precision | int8 / float32 |
| On-disk size | 3.8 GB |
| Asset kind | single-graph policy + norm_stats sidecar |
| assetVersion | 2.0 |
encode graph (run once per
observation) + a denoise_step graph (the host drives it num_steps times) +
norm_stats.json (un-normalization). You supply the host loop (the N-step
sampler + un-normalization) in Swift. Recommended integration: keep LeRobot's
Python RobotClient for the servos/cameras/calibration, and run inference
on-device — see the io_contract in the catalog for the exact tensors.pip install coreai-catalog && coreai-catalog install fastwam-liberominimum_os v27,
so the on-device Swift runtime requires macOS/iOS 27+. A Mac on macOS 26 can
convert and inspect it but not run it on-device.verify on hardware. fabric never fakes a parity number.coreai-fabric verify.| Field | Value |
|---|---|
| Base model | lerobot/fastwam_libero_uncond_2cam224 @ 53983e1249b4eb4d89ab42b40b8678a882d331ad |
| Converted by | models/fastwam/export.py (version not reported) |
| Recipe | fastwam-libero (recipe_source: fabric) |
| Precision / quantization | float32 / int8 |
| Conversion date | 2026-07-08 |
parity-report.json (gate results) ·
reproduce-manifest.json · LICENSE
(upstream terms).LICENSE. This artifact is a converted derivative of the base policy: its
weights were converted to Apple Core AI format. The conversion itself is
community work.fastwam-libero.aimodel pipeline that produced this asset.