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cpize-model-workflow

Orchestrate the END-TO-END integration of context parallelism into a custom co-folding / structure-prediction model: turn the whole effort into a prioritized, dependency-sorted worklist, then drive it phase by phase — map the model (learn_context), verify infra (build_infra), shard data features (shard_data_feats), port modules (dtensor_modules, fanned out via dispatch_work), prove correctness (test), wire the trainer/predictor (dist_lifecycle), and finally profile memory and compute (mem_profile, nsys_profile) and benchmark. Use as the front door when the user wants to "CP-ify my model" as a whole program of work — it prioritizes, sequences, and gates the long task list and delegates each task to the right fold-cp skill. Not for a single module (use dtensor_modules + test directly).

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Source facts

Repository
NVIDIA-BioNeMo/boltz-cp
Last source activity
July 16, 2026 at 00:46
Detected SKILL.md language
English
Stars
54
Forks
7

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