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[ARTICLE · art-88610] src=research.nvidia.com ↗ pub= topic=robotics verified=true sentiment=↑ positive

ROSA: A Robotics Foundation Model Serving System for Robot Factories

ROSA, a robotics foundation model serving system for robot factories, improves factory productivity by up to 12.06x over conventional dedicated serving systems, according to a paper proposing the system. ROSA uses shared GPU-pool serving, robotics-aware programming abstractions, and factory-objective-driven scheduling to support multi-model pipelines and per-task performance requirements. The system is implemented on Ray Serve with vLLM, PyTorch, and JAX backends and evaluated on real robots and synthetic workloads.

read1 min views1 publishedAug 5, 2026

Robotics foundation models (RFMs) are making general-purpose robots increasingly practical for factory deployments. While RFM serving systems are central to this vision, existing systems are largely shaped by a single-robot, single-model assumption: inference is treated as an edge-computing problem handled by an on-robot or dedicated nearby GPU, and the serving objective is to minimize the latency of a single action model. In this paper, we propose ROSA, an RFM serving system for robot factories designed around three key principles. First, ROSA adopts shared GPU-pool serving, allowing a fleet of robots to access powerful server-class GPUs over the network in order to improve inference performance, battery duration, and GPU utilization. Second, ROSA provides a robotics-aware programming abstraction and system design that supports multi-model pipelines, per-task performance requirements, and failure handling. Third, ROSA uses factory-objective-driven scheduling to maximize SLO-qualified factory productivity rather than minimizing individual request latency. We implement ROSA on top of Ray Serve for distributed orchestration, with vLLM, PyTorch, and JAX as model-serving backends, and evaluate it on both real robots and synthetic large-scale workloads. The results show that ROSA improves factory productivity by up to 12.06x over conventional dedicated serving systems.

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