Visual Attributes Visual Attributes

Visual Attributes

    • 87,99 €
    • 87,99 €

Beschreibung des Verlags

This unique text/reference provides a detailed overview of the latest advances in machine learning and computer vision related to visual attributes, highlighting how this emerging field intersects with other disciplines, such as computational linguistics and human-machine interaction.

Topics and features:
Presents attribute-based methods for zero-shot classification, learning using privileged information, and methods for multi-task attribute learningDescribes the concept of relative attributes, and examines the effectiveness of modeling relative attributes in image search applicationsReviews state-of-the-art methods for estimation of human attributes, and describes their use in a range of different applicationsDiscusses attempts to build a vocabulary of visual attributesExplores the connections between visual attributes and natural languageProvides contributions from an international selection of world-renowned scientists, covering both theoretical aspects of visual attribute learning and practical computer vision applications


This authoritative work is a must-read for all researchers interested in recognizing visual attributes and using them in real-world applications, and is accessible to the wider research community in visual and semantic understanding.

Dr. Rogerio Schmidt Feris is a manager at IBM T.J. Watson Research Center, New York, USA, where he leads research in computer vision and machine learning. Dr. Christoph H. Lampert is a professor at the Institute of Science and Technology Austria, where he serves as the Principal Investigator of the Computer Vision and Machine Learning Group. Dr. Devi Parikh is an assistant professor in the School of Interactive Computing at Georgia Tech, USA, where she leads the Computer Vision Lab.

GENRE
Computer und Internet
ERSCHIENEN
2017
21. März
SPRACHE
EN
Englisch
UMFANG
372
Seiten
VERLAG
Springer International Publishing
ANBIETERINFO
Springer Science & Business Media LLC
GRÖSSE
12,2
 MB
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