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Smart city article details

Title Collaborative Intelligent Cross-Camera Video Analytics At Edge: Opportunities And Challenges
ID_Doc 14727
Authors Pasandi H.B.; Nadeem T.
Year 2019
Published AIChallengeIoT 2019 - Proceedings of the 2019 International Workshop on Challenges in Artificial Intelligence and Machine Learning for Internet of Things
DOI http://dx.doi.org/10.1145/3363347.3363360
Abstract Nowadays, video cameras are deployed in large scale for spatial monitoring of physical places (e.g., surveillance systems in the context of smart cities). The massive camera deployment, however, presents new challenges for analyzing the enormous data, as the cost of high computational overhead of sophisticated deep learning techniques imposes a prohibitive overhead, in terms of energy consumption and processing throughput, on such resource-constrained edge devices. To address these limitations, this paper envisions a collaborative intelligent cross-camera video analytics paradigm at the network edge in which camera nodes adjust their pipelines (e.g., inference) to incorporate correlated observations and shared knowledge from other nodes' contents. By harassing redundant spatio-Temporal to reduce the size of the inference search space in one hand, and intelligent collaboration between video nodes on the other, we discuss how such collaborative paradigm can considerably improve accuracy, reduce latency and decrease communication bandwidth compared to noncollaborative baselines. This paper also describes major opportunities and challenges in realizing such a paradigm. © 2019 Association for Computing Machinery.
Author Keywords Cognitive Edge; Collaborative Video Analytics; Machine Learning; Spatio-Temporal Correlations


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