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Probabilistic Models and Inference for Multi-View People Detection in Overlapping Depth Images

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204pages
Temps de lecture
8heures

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Focusing on advanced techniques for indoor people detection, this work explores the integration of multi-view information from depth sensors to enhance detection accuracy. It addresses the challenges of overlapping depth images by reformulating the detection task as an inverse problem. The authors introduce a generative probabilistic framework that utilizes both temporal context and multi-view evidence, aiming to improve performance in wide-area scenarios. This approach highlights the significance of leveraging redundant and complementary data for effective detection.

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Probabilistic Models and Inference for Multi-View People Detection in Overlapping Depth Images, Johannes Wetzel

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Année de publication
2022
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