Harness Engineering for Physical AI: Robot Middleware Is the Harness Layer 文章

ArXiv CS.AI2026-06-09NEWSen作者: Sanghoon Lee, Jiyeong Chae, Kyung-Joon Park

详细信息

来源站点
ArXiv CS.AI
作者
Sanghoon Lee, Jiyeong Chae, Kyung-Joon Park
文章类型
NEWS
语言
en
发布日期
2026-06-09

摘要

arXiv:2606.09416v1 Announce Type: cross Abstract: Robot middleware faces a new role in the era of Physical AI. Learned policies, planners, and vision-language-action (VLA) models now enter deployed robots as causal participants on the control path, but the layer that integrates them with timing, scheduling, and network has not been named. Recent language-agent work names this layer the harness, the external system that mediates tools, manages state, bounds resources, and records execution. The robotics community has not yet adopted this framing, and we propose that robot middleware is that harness. A Physical AI harness differs from a software harness in where it intervenes. A software harness mediates at tool-call boundaries. A Physical AI harness must mediate at control, computing, and communication simultaneously, because a learned policy's output crosses all three: its commands shift the trajectory, its inference time shifts the schedule, and its payload shifts the bandwidth.

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