Papers › RPTQ: Reorder-based Post-training Quantization for Large Language Models

RPTQ: Reorder-based Post-training Quantization for Large Language Models

3 Apr 2023arXiv:2304.01089archive 2025-07-28

Zhihang Yuan, Lin Niu, Jiawei Liu, Wenyu Liu, Xinggang Wang, Yuzhang Shang, Guangyu Sun, Qiang Wu, Jiaxiang Wu, Bingzhe Wu

Large-scale language models (LLMs) have demonstrated impressive performance, but their deployment presents challenges due to their significant memory usage. This issue can be alleviated through quantization. In this paper, we identify that the challenge in quantizing activations in LLMs arises from varying ranges across channels, rather than solely the presence of outliers. To address this challenge, we introduce a quantization method called RPTQ, which utilizes a reorder-based approach. By rearranging the channels and quantizing them in clusters, RPTQ effectively mitigates the impact of range differences between channels. To minimize the overhead of the reorder operation, we fuse it into the layer norm operation and weights in linear layers. In our experiments, RPTQ achieved a significant breakthrough by utilizing 3-bit activation in LLMs for the first time, resulting in a substantial reduction in memory usage. For instance, quantizing OPT-175b can lead to a memory consumption reduction of up to 80%.

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find_layers hahnyuan/rptq4llm/models/models_utils.py official repository ran MIT (permissive) · 904cd61df2fe8fb9 · report
hash_args hahnyuan/rptq4llm/models/models_utils.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · ea06eaae4fc1eaf0 · report
make_disjoint_window hahnyuan/rptq4llm/models/models_utils.py official repository ran MIT (permissive) · 4df9168e0a0c38eb · report
sort_layers_by_params hahnyuan/rptq4llm/parallel_utils.py official repository ran MIT (permissive) · aaa7723c864e0a5e · report
assign_layers_to_gpus hahnyuan/rptq4llm/parallel_utils.py official repository unverified MIT (permissive) · 716c9b4e71ec3424 · report
get_c4 hahnyuan/rptq4llm/datautils.py official repository unverified MIT (permissive) · a7b3cccc9ad0d188 · report
get_lowest_occupied_gpu hahnyuan/rptq4llm/parallel_utils.py official repository unverified MIT (permissive) · 641a84aa48f6ef5f · report
get_ptb hahnyuan/rptq4llm/datautils.py official repository unverified MIT (permissive) · 53cc9d33d473dc6b · report
get_wikitext2 hahnyuan/rptq4llm/datautils.py official repository unverified MIT (permissive) · 8b5943596ef2fc63 · report

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