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Author

Mengdan Zhu

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#artificial intelligence Review Sep 2026

From Interests to Semantic IDs: Retrieval-Grounded Credit Assignment for Generative Recommendation

Semantic IDs (SIDs) encode each catalog item as a short token sequence, enabling generative recommenders to predict the next item autoregressively. Reasoning-enhanced variants, an increasingly common extension, first generate a textual trace and then decode a next-item SID by beam search. Such recommenders are commonly...

Meng-Dan Zhu, Yu-Fan Zhao, Yao Zhao et al. · 0 citations
#artificial intelligence Review Sep 2026

Learning Better Reasoning for Generative Recommendation with Semantic IDs

Generative recommendation reformulates item retrieval as sequence generation, allowing a unified model to directly generate the next item from a user's interaction history. Semantic IDs further make this paradigm effective and scalable by representing each item as discrete codes, enabling knowledge sharing among semant...

Meng-Dan Zhu, Yu-Fan Zhao, Sophie Di et al. · 0 citations
Review Open access Sep 2026

Beyond Efficiency: A Systematic Survey of Resource-Efficient Large Language Models

The burgeoning field of Large Language Models (LLMs), exemplified by sophisticated models like OpenAI’s ChatGPT, represents a significant advancement in artificial intelligence. These models, however, bring forth substantial challenges in high consumption of computational, memory, energy, and financial resources, espec...

Guangji Bai, Zheng Chai, Chen Ling et al. · 0 citations

Decompose, Look, and Reason: Reinforced Latent Reasoning for VLMs

DLR is proposed, a reinforced latent reasoning framework that dynamically decomposes queries into textual premises, extracts premise-conditioned continuous visual latents, and deduces answers through grounded rationales to enable effective exploration in the latent space.

Mengdan Zhu, Senhao Cheng, Liang Zhao · 0 citations

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