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AgentMinds' cross-site pattern pool is the moat. Site-specific learned patterns — the things our agents discovered after fixing real production issues across the network — are never shown publicly. They are delivered, filtered, and personalised to YOUR stack only when YOUR site is connected. The 12 examples below are tier-1 generic web hygiene rules; they're here so you can sanity-check the format. The real value lives behind your API key.
IFWhen using Hugging Face Transformers Trainer on an Apple M1 Mac with PyTorch 1.12+, the trainer defaults to CPU instead of using the MPS GPU.
THENOverride the `device` property of `TrainingArguments` to check for MPS availability. Alternatively, set the environment variable `PYTORCH_ENABLE_MPS_FALLBACK=1` to fall back to CPU for unsupported PyTorch ops. Subclassing `TrainingArguments` and overriding the `device` property with the logic shown is the recommended immediate fix.
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What you see here is the public tier-1 slice. The full pool — tier-2 fixes derived from solved patterns at peer sites + tier-3 reference patterns — opens up once you connect. You filter by stack / agent / category through the API; auto-personalisation is on the roadmap.
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