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20242026
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cs.IR2025

Bridging Search and Recommendation through Latent Cross Reasoning

Teng Shi, Weicong Qin, Weijie Yu +4

Search and recommendation (S&R) are fundamental components of modern online platforms, yet effectively leveraging search behaviors to improve recommendation remains a challenging p…

cs.IR2025

Benefit from Rich: Tackling Search Interaction Sparsity in Search Enhanced Recommendation

Teng Shi, Weijie Yu, Xiao Zhang +3

In modern online platforms, search and recommendation (S&R) often coexist, offering opportunities for performance improvement through search-enhanced approaches. Existing studies s…

cs.IR2025

Paragon: Parameter Generation for Controllable Multi-Task Recommendation

Chenglei Shen, Jiahao Zhao, Xiao Zhang +3

Commercial recommender systems face the challenge that task requirements from platforms or users often change dynamically (e.g., varying preferences for accuracy or diversity). Ide…

cs.IR2025

MoRE: A Mixture of Reflectors Framework for Large Language Model-Based Sequential Recommendation

Weicong Qin, Yi Xu, Weijie Yu +5

Large language models (LLMs) have emerged as a cutting-edge approach in sequential recommendation, leveraging historical interactions to model dynamic user preferences. Current met…

cs.IR2025

Similarity = Value? Consultation Value Assessment and Alignment for Personalized Search

Weicong Qin, Yi Xu, Weijie Yu +6

Personalized search systems in e-commerce platforms increasingly involve user interactions with AI assistants, where users consult about products, usage scenarios, and more. Levera…

cs.IR2025

MAPS: Motivation-Aware Personalized Search via LLM-Driven Consultation Alignment

Weicong Qin, Yi Xu, Weijie Yu +5

Personalized product search aims to retrieve and rank items that match users' preferences and search intent. Despite their effectiveness, existing approaches typically assume that…