Bridging the Gap: Self-Optimized Fine-Tuning for LLM-based Recommender Systems

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Hauptverfasser: Tang, Heng, Liu, Feng, Chen, Xinbo, Chen, Jiawei, Wang, Bohao, Zhang, Changwang, Wang, Jun, Sun, Yuegang, Hu, Bingde, Wang, Can
Format: Preprint
Veröffentlicht: 2025
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author Tang, Heng
Liu, Feng
Chen, Xinbo
Chen, Jiawei
Wang, Bohao
Zhang, Changwang
Wang, Jun
Sun, Yuegang
Hu, Bingde
Wang, Can
author_facet Tang, Heng
Liu, Feng
Chen, Xinbo
Chen, Jiawei
Wang, Bohao
Zhang, Changwang
Wang, Jun
Sun, Yuegang
Hu, Bingde
Wang, Can
contents Recent years have witnessed extensive exploration of Large Language Models (LLMs) on the field of Recommender Systems (RS). There are currently two commonly used strategies to enable LLMs to have recommendation capabilities: 1) The "Guidance-Only" strategy uses in-context learning to exploit and amplify the inherent semantic understanding and item recommendation capabilities of LLMs; 2) The "Tuning-Only" strategy uses supervised fine-tuning (SFT) to fine-tune LLMs with the aim of fitting them to real recommendation data. However, neither of these strategies can effectively bridge the gap between the knowledge space of LLMs and recommendation, and their performance do not meet our expectations. To better enable LLMs to learn recommendation knowledge, we combine the advantages of the above two strategies and proposed a novel "Guidance+Tuning" method called Self-Optimized Fine-Tuning (SOFT), which adopts the idea of curriculum learning. It first employs self-distillation to construct an auxiliary easy-to-learn but meaningful dataset from a fine-tuned LLM. Then it further utilizes a self-adaptive curriculum scheduler to enable LLMs to gradually learn from simpler data (self-distilled data) to more challenging data (real RS data). Extensive experiments demonstrate that SOFT significantly enhances the recommendation accuracy (37.59\% on average) of LLM-based methods. The code is available via https://anonymous.4open.science/r/Self-Optimized-Fine-Tuning-264E
format Preprint
id arxiv_https___arxiv_org_abs_2505_20771
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Bridging the Gap: Self-Optimized Fine-Tuning for LLM-based Recommender Systems
Tang, Heng
Liu, Feng
Chen, Xinbo
Chen, Jiawei
Wang, Bohao
Zhang, Changwang
Wang, Jun
Sun, Yuegang
Hu, Bingde
Wang, Can
Information Retrieval
Artificial Intelligence
Recent years have witnessed extensive exploration of Large Language Models (LLMs) on the field of Recommender Systems (RS). There are currently two commonly used strategies to enable LLMs to have recommendation capabilities: 1) The "Guidance-Only" strategy uses in-context learning to exploit and amplify the inherent semantic understanding and item recommendation capabilities of LLMs; 2) The "Tuning-Only" strategy uses supervised fine-tuning (SFT) to fine-tune LLMs with the aim of fitting them to real recommendation data. However, neither of these strategies can effectively bridge the gap between the knowledge space of LLMs and recommendation, and their performance do not meet our expectations. To better enable LLMs to learn recommendation knowledge, we combine the advantages of the above two strategies and proposed a novel "Guidance+Tuning" method called Self-Optimized Fine-Tuning (SOFT), which adopts the idea of curriculum learning. It first employs self-distillation to construct an auxiliary easy-to-learn but meaningful dataset from a fine-tuned LLM. Then it further utilizes a self-adaptive curriculum scheduler to enable LLMs to gradually learn from simpler data (self-distilled data) to more challenging data (real RS data). Extensive experiments demonstrate that SOFT significantly enhances the recommendation accuracy (37.59\% on average) of LLM-based methods. The code is available via https://anonymous.4open.science/r/Self-Optimized-Fine-Tuning-264E
title Bridging the Gap: Self-Optimized Fine-Tuning for LLM-based Recommender Systems
topic Information Retrieval
Artificial Intelligence
url https://arxiv.org/abs/2505.20771