Latency-Aware Collaborative Perception

July 18, 2022 ยท Declared Dead ยท ๐Ÿ› European Conference on Computer Vision

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Authors Zixing Lei, Shunli Ren, Yue Hu, Wenjun Zhang, Siheng Chen arXiv ID 2207.08560 Category cs.CV: Computer Vision Cross-listed cs.RO Citations 137 Venue European Conference on Computer Vision Last Checked 3 months ago
Abstract
Collaborative perception has recently shown great potential to improve perception capabilities over single-agent perception. Existing collaborative perception methods usually consider an ideal communication environment. However, in practice, the communication system inevitably suffers from latency issues, causing potential performance degradation and high risks in safety-critical applications, such as autonomous driving. To mitigate the effect caused by the inevitable latency, from a machine learning perspective, we present the first latency-aware collaborative perception system, which actively adapts asynchronous perceptual features from multiple agents to the same time stamp, promoting the robustness and effectiveness of collaboration. To achieve such a feature-level synchronization, we propose a novel latency compensation module, called SyncNet, which leverages feature-attention symbiotic estimation and time modulation techniques. Experiments results show that the proposed latency aware collaborative perception system with SyncNet can outperforms the state-of-the-art collaborative perception method by 15.6% in the communication latency scenario and keep collaborative perception being superior to single agent perception under severe latency.
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