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LightThinker: Thinking Step-by-Step Compression

About

Large language models (LLMs) have shown remarkable performance in complex reasoning tasks, but their efficiency is hindered by the substantial memory and computational costs associated with generating lengthy tokens. In this paper, we propose LightThinker, a novel method that enables LLMs to dynamically compress intermediate thoughts during reasoning. Inspired by human cognitive processes, LightThinker compresses verbose thought steps into compact representations and discards the original reasoning chains, thereby significantly reducing the number of tokens stored in the context window. This is achieved by training the model on when and how to perform compression through data construction, mapping hidden states to condensed gist tokens, and creating specialized attention masks. Additionally, we introduce the Dependency (Dep) metric to quantify the degree of compression by measuring the reliance on historical tokens during generation. Extensive experiments on four datasets and two models show that LightThinker reduces peak memory usage and inference time, while maintaining competitive accuracy. Our work provides a new direction for improving the efficiency of LLMs in complex reasoning tasks without sacrificing performance. Code is released at https://github.com/zjunlp/LightThinker.

Jintian Zhang, Yuqi Zhu, Mengshu Sun, Yujie Luo, Shuofei Qiao, Lun Du, Da Zheng, Huajun Chen, Ningyu Zhang• 2025

Related benchmarks

TaskDatasetResultRank
Mathematical ReasoningGSM8K
Accuracy90.55
499
Mathematical ReasoningAIME 24
Accuracy33.3
113
Mathematical ReasoningAIME 25
Accuracy26.7
14
Mathematical ReasoningAverage (GSM8K, MATH-500, AMC23, AIME24, AIME25)
Accuracy62.1
14
Mathematical ReasoningGSM8K
Accuracy85.6
12
Mathematical ReasoningMATH 500
Accuracy84.8
12
Mathematical ReasoningAMC 23
Accuracy80
12
Mathematical ReasoningMATH 500
Accuracy (%)91.42
12
Mathematical ReasoningAIME 2024
Accuracy38.67
12
Mathematical ReasoningAIME 2025
Accuracy29.67
12
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