2018
DOI: 10.3390/s19010004
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Coarse-to-Fine Adaptive People Detection for Video Sequences by Maximizing Mutual Information †

Abstract: Applying people detectors to unseen data is challenging since patterns distributions, such as viewpoints, motion, poses, backgrounds, occlusions and people sizes, may significantly differ from the ones of the training dataset. In this paper, we propose a coarse-to-fine framework to adapt frame by frame people detectors during runtime classification, without requiring any additional manually labeled ground truth apart from the offline training of the detection model. Such adaptation make use of multiple detecto… Show more

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Cited by 2 publications
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References 48 publications
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