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2017 | OriginalPaper | Chapter

Prototype System Design for Large-Scale Person Re-identification

Authors : Seon Ho Oh, Seung-Wan Han, Beom-Seok Choi, Geon-Woo Kim

Published in: Advanced Multimedia and Ubiquitous Engineering

Publisher: Springer Singapore

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Abstract

Identifying a person across cameras in disjoint views at different time and location has important applications in visual surveillance. However, it is difficult to apply existing methods to the development of large-scale person identification systems in practice due to underlying limitations such as high model complexity and batch learning with the labeled training data. In this paper, we propose a prototype system design for large-scale person re-identification that consists of two phases. In order to provide scalability and response within an acceptable time, and handle unlabeled data, we employ an agglomerative hierarchical clustering with simple matching and compact deep neural network for feature extraction.

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Metadata
Title
Prototype System Design for Large-Scale Person Re-identification
Authors
Seon Ho Oh
Seung-Wan Han
Beom-Seok Choi
Geon-Woo Kim
Copyright Year
2017
Publisher
Springer Singapore
DOI
https://doi.org/10.1007/978-981-10-5041-1_103

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