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Efficient transformers: A survey

3 Pith papers cite this work. Polarity classification is still indexing.

3 Pith papers citing it

fields

cs.LG 2 cs.AI 1

years

2026 1 2025 2

representative citing papers

KernelBench: Can LLMs Write Efficient GPU Kernels?

cs.LG · 2025-02-14 · accept · novelty 7.0

KernelBench shows that even the best current LLMs generate correct and faster-than-baseline GPU kernels in fewer than 20 percent of realistic ML workloads.

OmniDrop: Layer-wise Token Pruning for Omni-modal LLMs via Query-Guidance

cs.AI · 2026-05-14 · unverdicted · novelty 6.0

OmniDrop is a training-free layer-wise token pruning framework for omni-modal LLMs that uses query guidance and temporal diversity to reduce prefill latency by up to 40% and memory by 14.7% while improving benchmark scores by up to 3.58 points.

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