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New agent PaperScout enhances academic paper search with adaptive strategy

Researchers have developed PaperScout, an autonomous agent designed to improve academic paper search by treating it as a sequential decision-making process. Unlike traditional methods that rely on fixed workflows, PaperScout dynamically adapts its search and expansion strategies based on the ongoing retrieval context. To address training challenges in such multi-turn agentic tasks, the team introduced Proximal Sequence Policy Optimization (PSPO), a novel method that aligns optimization with the agent's interaction sequence. Experiments show PaperScout outperforms existing retrieval and reinforcement learning baselines in recall and relevance. AI

IMPACT This research could lead to more effective and adaptive tools for navigating the growing volume of academic literature.

RANK_REASON The cluster describes a new academic paper detailing a novel agent and optimization method for a specific research task. [lever_c_demoted from research: ic=1 ai=1.0]

Read on arXiv cs.AI →

AI-generated summary · Google Gemini · from 1 sources. How we write summaries →

New agent PaperScout enhances academic paper search with adaptive strategy

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The cluster describes a new academic paper detailing a novel agent and optimization method for a specific research task. [lever_c_demoted from research: ic=1 ai=1.0]
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COVERAGE [1]

  1. arXiv cs.AI TIER_1 English(EN) · Tingyue Pan, Jie Ouyang, Mingyue Cheng, Qingchuan Li, Zirui Liu, Daoyu Wang, Mingfan Pan, Shuo Yu, Qi Liu, Enhong Chen ·

    PaperScout: An Autonomous Agent for Academic Paper Search with Process-Aware Sequence-Level Policy Optimization

    arXiv:2601.10029v3 Announce Type: replace Abstract: Academic paper search is a fundamental task in scientific research, yet most existing approaches organize retrieval around predefined workflows or structured interaction protocols that struggle with complex, conditional queries.…