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期刊&会议

International Conference on Robotics and Automation · 会议 · Robotics

2026-08-12 至 2026-08-12 收录 2
2608.09138 2026-08-12 cs.RO cs.AI 版本更新

SpeedTuning: Speeding Up Policy Execution with Lightweight Reinforcement Learning

SpeedTuning:用轻量强化学习加速策略执行

David D. Yuan, Tony Z. Zhao, Kaylee Burns, Chelsea Finn

机构 * Stanford University(斯坦福大学)

AI总结 SpeedTuning是一种轻量强化学习框架,可预测动作最优执行速度,在无需额外数据采集的情况下,将机器人操作策略加速超2.4倍且保持足够成功率,适用于多种动态精确任务。

Comments 10 pages, 12 figures. This arXiv version includes an appendix with qualitative simulation rollouts and additional ablations. Published at ICRA 2025

Journal ref 2025 IEEE International Conference on Robotics and Automation (ICRA), pp. 1184-1192, 2025

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2602.02035 2026-08-12 cs.RO cs.AI cs.IT cs.LG cs.MA math.IT 版本更新

Bandwidth-Efficient Multi-Agent Communication through Information Bottleneck and Vector Quantization

通过信息瓶颈和向量量化实现带宽高效的多智能体通信

Ahmad Farooq, Kamran Iqbal

机构 * Department of Electrical and Computer Engineering, University of Arkansas at Little Rock(电气与计算机工程系,阿肯色大学小岩分校)

AI总结 本研究通过信息瓶颈与向量量化方法,实现多智能体通信的带宽高效优化,提升协调性能并减少带宽消耗。

Comments Accepted at IEEE ICRA 2026, Vienna, Austria. 8 pages, 4 figures, 4 tables. v2: replaces v1 with the accepted camera-ready version and corrects a typo in the bandwidth reduction (41.4% -> 71.4%) in the abstract, Sec. I, Fig. 2 caption, Sec. VI and Sec. VII. Sec. V-A and Table I (800 vs 2800 bits/episode) were already correct; no results or conclusions changed

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