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ml-env-probe

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UpdatedMay 22, 2026 at 01:06

Probe the machine's ML hardware/software environment and tell the agent what it can and cannot run BEFORE attempting any ML setup. Produces a JSON manifest (env_report.json) plus a human-readable capability report with tiered ✅/⚠️/❌ verdicts and concrete install commands. Use at the START of any MLE automation, or whenever the user asks about: CUDA / driver / PyTorch version compatibility, why flash-attention / xformers / apex / bitsandbytes / deepspeed won't install or build, which torch wheel to pick, how to set up an isolated env (uv/conda/venv), package conflicts (transformers↔tokenizers, numpy 2.x), or how to split a model across GPUs (tensor/pipeline/data parallel, FSDP). Covers NVIDIA, Apple MPS, CPU, Google TPU, and Chinese accelerators (昇腾 Ascend, 寒武纪 Cambricon, 海光 Hygon DCU, 沐曦 MetaX). Triggers: "环境探测", "能跑什么", "装不上", "编译失败", "CUDA 版本", "torch 版本", "flash-attn", "环境清单", "环境隔离", "并行策略", "tensor parallel".

Installation

Install with Codex or Claude Copy this prompt, paste it into Codex, Claude, or another assistant, and let it review the skill page and install it for you.

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