Yuegang Sun

dblp:405/2121 · DBLP profile ↗
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4ranked-venue papers
0as first author
4since 2021 · last 2026
0009-0009-2701-4641ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Databases, data management, data science and information retrieval · 4 · 4 since 2021Applied, interdisciplinary, general and emerging computing · 2 · 2 since 2021Artificial intelligence and machine learning · 1 · 1 since 2021
YearPublicationVenuePosition
2026 Field Matters: A Lightweight LLM-enhanced Method for CTR Prediction
abstract
Click-through rate (CTR) prediction is a fundamental task in modern recommender systems. In recent years, the integration of large language models (LLMs) has been shown to effectively enhance the performance of traditional CTR methods. However, existing LLM-enhanced methods often require extensive processing of detailed textual descriptions for large-scale instances or user/item entities, leading to substantial computational overhead. To address this challenge, this work introduces LLaCTR, a novel and lightweight LLM-enhanced CTR method that employs a field-level enhancement paradigm. Specifically, LLaCTR first utilizes LLMs to distill crucial and lightweight semantic knowledge from small-scale feature fields through self-supervised field-feature fine-tuning. Subsequently, it leverages this field-level semantic knowledge to enhance both feature representation and feature interactions. In our experiments, we integrate LLaCTR with six representative CTR models across four datasets, demonstrating its superior performance in terms of both effectiveness and efficiency compared to existing LLM-enhanced methods. Our code is available at https://github.com/istarryn/LLaCTR.
Feng Liu 0047, Jiawei Chen 0007, Xingyu Lou, Changwang Zhang, Jun Wang 0020, Yuegang Sun, Xiaohu Yang 0001, Can Wang 0001
WWW7
2026 Talos: Optimizing Top-K Accuracy in Recommender Systems
Shengjia Zhang, Weiqin Yang 0002, Jiawei Chen 0007, Peng Wu 0012, Yuegang Sun, Gang Wang 0055, Qihao Shi, Can Wang 0001
WWW5
2025 Breaking the Top-K Barrier: Advancing Top-K Ranking Metrics Optimization in Recommender Systems
abstract
In the realm of recommender systems (RS), Top-K ranking metrics such as NDCG@K are the gold standard for evaluating recommendation performance. However, during the training of recommendation models, optimizing NDCG@K poses significant challenges due to its inherent discontinuous nature and the intricate Top-K truncation. Recent efforts to optimize NDCG@K have either overlooked the Top-K truncation or suffered from high computational costs and training instability. To overcome these limitations, we propose SoftmaxLoss@K (SL@K), a novel recommendation loss tailored for NDCG@K optimization. Specifically, we integrate the quantile technique to handle Top-K truncation and derive a smooth upper bound for optimizing NDCG@K to address discontinuity. The resulting SL@K loss has several desirable properties, including theoretical guarantees, ease of implementation, computational efficiency, gradient stability, and noise robustness. Extensive experiments on four real-world datasets and three recommendation backbones demonstrate that SL@K outperforms existing losses with a notable average improvement of 6.03%. The code is available at https://github.com/Tiny-Snow/IR-Benchmark.
Weiqin Yang 0002, Jiawei Chen 0007, Shengjia Zhang, Peng Wu 0012, Yuegang Sun, Chun Chen 0001, Can Wang 0001
KDD (2)5
2025 MSL: Not All Tokens Are What You Need for Tuning LLM as a Recommender
abstract
Large language models (LLMs), known for their comprehension capabilities and extensive knowledge, have been increasingly applied to recommendation systems (RS).Given the fundamental gap between the mechanism of LLMs and the requirement of RS, researchers have focused on fine-tuning LLMs with recommendationspecific data to enhance their performance.Language Modeling Loss (LML), originally designed for language generation tasks, is commonly adopted.However, we identify two critical limitations of LML: 1) it exhibits significant divergence from the recommendation objective; 2) it erroneously treats all fictitious item descriptions as negative samples, introducing misleading training signals.To address these limitations, we propose a novel Masked Softmax Loss (MSL) tailored for fine-tuning LLMs on recommendation.MSL improves LML by identifying and masking invalid tokens that could lead to fictitious item descriptions during loss computation.This strategy can effectively avoid the interference from erroneous
Bohao Wang 0001, Feng Liu 0047, Jiawei Chen 0007, Xingyu Lou, Changwang Zhang, Jun Wang 0020, Yuegang Sun, Chun Chen 0001, Can Wang 0001
SIGIR7