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Awesome GitHub RepositoriesLayer Optimization Patches

Optimizing Hugging Face transformer models by swapping standard layers for memory-efficient Triton kernels with a single function call.

Distinct from Hugging Face: Distinct from Hugging Face: focuses on runtime layer optimization via kernel patching, not model format conversion.

Explore 1 awesome GitHub repository matching devops & infrastructure · Layer Optimization Patches. Refine with filters or upvote what's useful.

Awesome Layer Optimization Patches GitHub Repositories

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  • linkedin/liger-kernellinkedin 的头像

    linkedin/Liger-Kernel

    6,148在 GitHub 上查看↗

    Liger-Kernel is a collection of pre-built fused Triton kernels and patching utilities designed to accelerate large language model training. It provides drop-in kernel replacements for common LLM operations such as RMSNorm, cross-entropy loss, and attention, enabling increased throughput and reduced memory usage while preserving bitwise-exact gradients. The project serves as a toolkit for composing custom model architectures from individual optimized kernels and for patching pre-existing models with minimal code changes. The project distinguishes itself through its ability to perform runtime m

    Optimizes Hugging Face transformer models by swapping standard layers for memory-efficient Triton kernels with a single function call.

    Pythonfinetuninggemma2hacktoberfest
    在 GitHub 上查看↗6,148
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