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Towards Accurate, Adaptive, and Real-time Machine Perception on Resource-constrained Platforms

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Abstract

Accurate, real-time machine perception is a key enabler of emerging mobile applications such as augmented reality and autonomous driving. However, running complex vision models within the tight latency budgets of resource-limited platforms remains challenging. We address two root causes: (i) the growing computational demands of state-of-the-art vision models and (ii) the variability of compute resource availability in on-device AI deployments. In this extended abstract, we introduce two adaptive perception systems that leverage AI-system co-design. Deployed on commercial devices and evaluated on representative perception workloads, our systems demonstrate high-performance perception under practical latency and resource constraints.

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Publication details

DOI
10.1145/3711875.3736677
OpenAlex
W4414760454
Document type
conference-paper
Language
EN
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