Re-identification offers a useful tool for non-invasive
biometric validation, surveillance, and human-robot interaction in
a broad range of applications from crowd traffic management to
personalised healthcare.
This comprehensive volume is the first work of its kind
dedicated to addressing the challenge of "Person
Re-Identification," presenting insights from an international
selection of leading authorities in the field. Taking a strongly
multidisciplinary approach, the text provides an in-depth
discussion of recent developments and state-of-the-art methods
drawn from the computer vision, pattern recognition and machine
learning communities, embracing both fundamental research and
practical applications.
Topics and features: introduces examples of robust feature
representations, reviews salient feature weighting and selection
mechanisms, and examines the benefits of semantic attributes;
describes how to segregate meaningful body parts from background
clutter; examines the use of 3D depth images, and contextual
constraints derived from the visual appearance of a group; reviews
approaches to feature transfer function and distance metric
learning, and discusses potential solutions to issues of data
scalability and identity inference; investigates the limitations of
existing benchmark datasets, presents strategies for camera
topology inference, and describes techniques for improving
post-rank search efficiency; explores the design rationale and
implementation considerations of building a practical
re-identification system.
This timely collection will be of great interest to academics,
industrial researchers and postgraduates involved in computer
vision and machine learning, database image retrieval, big data
mining, and search engines, as well as to developers keen to
exploit this emerging technology for commercial applications.
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