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20242026
most citedA Survey of Multimodal Retrieval-Augmented Generation

5 citations · 5 across the 8 of their papers we have counts for

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cs.IR2025

M2IO-R1: An Efficient RL-Enhanced Reasoning Framework for Multimodal Retrieval Augmented Multimodal Generation

Zhiyou Xiao, Qinhan Yu, Binghui Li +3

Current research on Multimodal Retrieval-Augmented Generation (MRAG) enables diverse multimodal inputs but remains limited to single-modality outputs, restricting expressive capaci…

cs.IR2025

Bridge the Domains: Large Language Models Enhanced Cross-domain Sequential Recommendation

Qidong Liu, Xiangyu Zhao, Yejing Wang +6

Cross-domain Sequential Recommendation (CDSR) aims to extract the preference from the user's historical interactions across various domains. Despite some progress in CDSR, two prob…

cs.IR20255 cited

A Survey of Multimodal Retrieval-Augmented Generation

Lang Mei, Siyu Mo, Zhihan Yang +1

Multimodal Retrieval-Augmented Generation (MRAG) enhances large language models (LLMs) by integrating multimodal data (text, images, videos) into retrieval and generation processes…

cs.IR2025

CogPlanner: Unveiling the Potential of Agentic Multimodal Retrieval Augmented Generation with Planning

Xiaohan Yu, Zhihan Yang, Chong Chen

Multimodal Retrieval Augmented Generation (MRAG) systems have shown promise in enhancing the generation capabilities of multimodal large language models (MLLMs). However, existing…

cs.IR2024

Explainable CTR Prediction via LLM Reasoning

Xiaohan Yu, Li Zhang, Chong Chen

Recommendation Systems have become integral to modern user experiences, but lack transparency in their decision-making processes. Existing explainable recommendation methods are hi…

cs.IR2024

Large Language Model Enhanced Recommender Systems: A Survey

Qidong Liu, Xiangyu Zhao, Yuhao Wang +9

Large Language Model (LLM) has transformative potential in various domains, including recommender systems (RS). There have been a handful of research that focuses on empowering the…