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Feng Li

4 papers hereh-index 458 citations7 works total

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • middle author3

Across the 3 of 4 papers where every author was matched, so the position is known.

fields
  • cs.IR2
  • cs.AI1
  • cs.LG1
same name
  • Feng Li — 12 papers, h 6
  • Feng Li — 9 papers, h 3
  • Feng Li — 6 papers, h 6
  • Feng Li — 6 papers, h 13
  • Feng Li — 5 papers, h 1
  • Feng Li — 5 papers, h 5

Either other researchers who publish under this name, or the same person where the external sources have not merged their records.

identity via Semantic Scholar / OpenAlex

most citedNEZHA: A Zero-sacrifice and Hyperspeed Decoding Architecture for Generative Recommendations

1 citations · 1 across the 2 of their papers we have counts for

collaborators

4 papers

cs.IR2026

GFlowGR: Fine-tuning Generative Recommendation Frameworks with Generative Flow Networks

Yejing Wang, Shengyu Zhou, Jinyu Lu +9

Generative recommendations (GR), which usually include item tokenizers and generative Large Language Models (LLMs), have demonstrated remarkable success across a wide range of scen…

cs.AI2026★ 1 cited

NEZHA: A Zero-sacrifice and Hyperspeed Decoding Architecture for Generative Recommendations

Yejing Wang, Shengyu Zhou, Jinyu Lu +9

Generative Recommendation (GR), powered by Large Language Models (LLMs), represents a promising new paradigm for industrial recommender systems. However, their practical applicatio…

cs.LG2026

LoFT-LLM: Low-Frequency Time-Series Forecasting with Large Language Models

Jiacheng You, Jingcheng Yang, Yuhang Xie +7

Time-series forecasting in real-world applications such as finance and energy often faces challenges due to limited training data and complex, noisy temporal dynamics. Existing dee…

cs.IR2025

VALUE: Value-Aware Large Language Model for Query Rewriting via Weighted Trie in Sponsored Search

Xiao Zhang, Guanyu Chen, Boyang Zuo +4

Query-to-bidword(i.e., bidding keyword) rewriting is fundamental to sponsored search, transforming noisy user queries into semantically relevant and commercially valuable keywords.…

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Not affiliated with arXiv. Researcher data from Semantic Scholar (ODC-BY) and OpenAlex.