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Linfeng Zhang

21 papers hereh-index 576 citations21 works total

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

author position
  • middle author3
  • last author18

Across the 21 of 21 papers where every author was matched, so the position is known.

fields
  • cs.CV9
  • cs.AI4
  • cs.CL3
  • cs.LG2
  • cs.SE2
  • cs.CE1
same name
  • Linfeng Zhang — 25 papers, h 15
  • Linfeng Zhang — 24 papers, h 10
  • Linfeng Zhang — 17 papers, h 8
  • Linfeng Zhang — 15 papers, h 7
  • Linfeng Zhang — 15 papers, h 7
  • Linfeng Zhang — 11 papers, h 2

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

collaborators
Showing cs.AIShow all

4 papers · 1 filter

cs.AI2026

Credit Where It is Due: Cross-Modality Connectivity Drives Precise Reinforcement Learning for MLLM Reasoning

Zhengbo Jiao, Shaobo Wang, Zifan Zhang +4

Reinforcement Learning with Verifiable Rewards (RLVR) has significantly advanced the reasoning capabilities of Multimodal Large Language Models (MLLMs), yet how visual evidence is…

cs.AI2026

Agentic Proposing: Enhancing Large Language Model Reasoning via Compositional Skill Synthesis

Zhengbo Jiao, Shaobo Wang, Zifan Zhang +5

Advancing complex reasoning in large language models relies on high-quality, verifiable datasets, yet human annotation remains cost-prohibitive and difficult to scale. Current synt…

cs.AI2025

CircuitSeer: Mining High-Quality Data by Probing Mathematical Reasoning Circuits in LLMs

Shaobo Wang, Yongliang Miao, Yuancheng Liu +3

Large language models (LLMs) have demonstrated impressive reasoning capabilities, but scaling their performance often relies on massive reasoning datasets that are computationally…

cs.AI2025

Reasoning Like an Economist: Post-Training on Economic Problems Induces Strategic Generalization in LLMs

Yufa Zhou, Shaobo Wang, Xingyu Dong +7

Directly training Large Language Models (LLMs) for Multi-Agent Systems (MAS) remains challenging due to intricate reward modeling, dynamic agent interactions, and demanding general…

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