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Human Re-Identification / by Ziyan Wu

By: Wu, Ziyan
Material type: materialTypeLabelE-bookSeries: Publisher: Cham : Springer International Publishing, 2016Description: 1 recurso en línea (XV, 104 p.) : 40 ilustraciones.ISBN: 9783319409917.Subject: Visión por ordenadorDDC classification: 006.6 | 006.37 Online resources: Acceso a este recurso digital (usuarios Universidad Europea de Madrid)Digital Resources Summary: This book covers aspects of human re-identification problems related to computer vision and machine learning. Working from a practical perspective, it introduces novel algorithms and designs for human re-identification that bridge the gap between research and reality. The primary focus is on building a robust, reliable, distributed and scalable smart surveillance system that can be deployed in real-world scenarios. This book also includes detailed discussions on pedestrian candidates detection, discriminative feature extraction and selection, dimension reduction, distance/metric learning, and decision/ranking enhancement. This book is intended for professionals and researchers working in computer vision and machine learning. Advanced-level students of computer science will also find the content valuable.
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Holdings
Item type Current library Collection Call number Copy number Status Date due Barcode Item holds
LIBRO-E NO PRÉSTAMO LIBRO-E NO PRÉSTAMO Madrid Digital Acceso Electrónico (UEM) Ciencias e Ingeniería TA1634 .W895 2016 EB (Browse shelf(Opens below)) .i11597227 Acceso electrónico eBOOK .i11597227
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This book covers aspects of human re-identification problems related to computer vision and machine learning. Working from a practical perspective, it introduces novel algorithms and designs for human re-identification that bridge the gap between research and reality. The primary focus is on building a robust, reliable, distributed and scalable smart surveillance system that can be deployed in real-world scenarios. This book also includes detailed discussions on pedestrian candidates detection, discriminative feature extraction and selection, dimension reduction, distance/metric learning, and decision/ranking enhancement. This book is intended for professionals and researchers working in computer vision and machine learning. Advanced-level students of computer science will also find the content valuable.

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