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From Player to Master: Enhancing Test-Time Learning of LLM Agents via Reinforcement Learning over Memory
June 07, 2026 ยท Grace Period ยท ๐ ICML 2026
Authors
Yishuo Cai, Xingyu Guo, Xuancheng Huang, Jinhua Du, Can Huang, Wenxuan Huang, Wenhan Ma, Yuyang Hu, Aohan Zeng, Jie Tang, Xu Sun
arXiv ID
2606.08656
Category
cs.CL: Computation & Language
Citations
0
Venue
ICML 2026
Abstract
Large language model (LLM) agents are increasingly deployed in long-running settings where improving through experience at test time becomes important. A common approach is to update an explicit memory after each interaction to guide future decisions. However, most existing methods rely on hand-designed prompting rules, making it difficult to align memory updates with downstream objectives over multi-step horizons consistently. We propose MemoPilot, a plug-in memory copilot that explicitly trains the memory update process to improve a frozen LLM's performance across sequential interactions. We formulate memory updating as a multi-turn decision problem and optimize it end-to-end with multi-turn GRPO. Our training recipe introduces (i) a turn-wise reward signal and (ii) a context-independent, turn-level advantage estimation across rollouts, enabling finer-grained credit assignment and more stable training in multi-turn settings. We evaluate MemoPilot on two testbeds: multi-round Rock-Paper-Scissors (RPS) and Limit Texas Hold'em (LHE). Across both environments, MemoPilot substantially improves test-time learning of a frozen player over strong baselines, ranking first in Elo ratings on both games (1762 on LHE and 1590 on RPS) and outperforming all baseline memory methods and proprietary models, including DeepSeek-V3.2.
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