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LSAQ: Layer-Specific Adaptive Quantization for Large Language Model Deployment

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abstract

As Large Language Models (LLMs) demonstrate exceptional performance across various domains, deploying LLMs on edge devices has emerged as a new trend. Quantization techniques, which reduce the size and memory requirements of LLMs, are effective for deploying LLMs on resource-limited edge devices. However, existing one-size-fits-all quantization methods often fail to dynamically adjust the memory requirements of LLMs, limiting their applications to practical edge devices with various computation resources. To tackle this issue, we propose Layer-Specific Adaptive Quantization (LSAQ), a system for adaptive quantization and dynamic deployment of LLMs based on layer importance. Specifically, LSAQ evaluates the importance of LLMs' neural layers by constructing top-k token sets from the inputs and outputs of each layer and calculating their Jaccard similarity. Based on layer importance, our system adaptively adjusts quantization strategies in real time according to the computation resource of edge devices, which applies higher quantization precision to layers with higher importance, and vice versa. {Experimental results show that LSAQ consistently outperforms the selected quantization baselines in terms of perplexity and zero-shot tasks. Additionally, it can devise appropriate quantization schemes for different usage scenarios to facilitate the deployment of LLMs.

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cs.LG 1

years

2025 1

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CONDITIONAL 1

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representative citing papers

CE-LoRA: Computation-Efficient LoRA Fine-Tuning for Language Models

cs.LG · 2025-02-03 · conditional · novelty 6.0

CE-LoRA accelerates LoRA fine-tuning by approximating the dense activation-gradient matrix multiply with selected rows and columns and a frozen low-rank correction, reporting up to 3.39x faster backward passes with near-matched accuracy.

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Showing 1 of 1 citing paper.

  • CE-LoRA: Computation-Efficient LoRA Fine-Tuning for Language Models cs.LG · 2025-02-03 · conditional · none · ref 9 · internal anchor

    CE-LoRA accelerates LoRA fine-tuning by approximating the dense activation-gradient matrix multiply with selected rows and columns and a frozen low-rank correction, reporting up to 3.39x faster backward passes with near-matched accuracy.