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Object Recognition in Man, Monkey, and Machine

Object Recognition in Man, Monkey, and Machine

Object Recognition in Man, Monkey, and Machine
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Object Recognition in Man, Monkey, and Machine Paperback - 1999

by Tarr, Michael J.; Bülthoff, Heinrich H

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Details

  • Title Object Recognition in Man, Monkey, and Machine
  • Author Tarr, Michael J.; Bülthoff, Heinrich H
  • Binding Paperback
  • Edition 1st
  • Condition New
  • Pages 224
  • Volumes 1
  • Language ENG
  • Publisher Bradford Book, Cambridge, MA
  • Publication date 1999-03-15
  • Bookseller's Inventory # 650640
  • ISBN 9780262700702 / 0262700700
  • Weight 1.05 lbs (0.48 kg)
  • Dimensions 10 x 7.06 x 0.59 in (25.40 x 17.93 x 1.50 cm)
  • Age range 18 to UP years
  • Grade levels 13 - UP
  • Category Psychology
  • Library of Congress subjects Three-dimensional display systems, Computer vision
  • Library of Congress Catalogue Number 98-31766
  • Dewey Decimal Code 006.42
  • Quantity available 5

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Reader reviews for Object Recognition in Man, Monkey, and Machine

From the publisher

The contributors bring a wide range of methodologies to bear on the common problem of image-based object recognition.

These interconnected essays on three-dimensional visual object recognition present cutting-edge research by some of the most creative neuroscientific, cognitive, and computational scientists in the field.

Cassandra Moore and Patrick Cavanagh take a classic demonstration, the perception of "two-tone" images, and turn it into a method for understanding the nature of object representations in terms of surfaces and the interaction between bottom-up and top-down processes. Michael J. Tarr and Isabel Gauthier use computer graphics to study whether viewpoint-dependent recognition mechanisms can generalize between exemplars of perceptually defined classes. Melvyn A. Goodale and G. Keith Humphrey use innovative psychophysical techniques to investigate dissociable aspects of visual and spatial processing in brain-injured subjects. D.I. Perrett, M.W. Oram, and E. Ashbridge combine neurophysiological single-cell data from monkeys with computational analyses for a new way of thinking about the mechanisms that mediate viewpoint-dependent object recognition and mental rotation. Shimon Ullman also addresses possible mechanisms to account for viewpoint-dependent behavior, but from the perspective of machine vision. Finally, Philippe G. Schyns synthesizes work from many areas, to provide a coherent account of how stimulus class and recognition task interact.

The contributors bring a wide range of methodologies to bear on the common problem of image-based object recognition.

About the author

Heinrich Blthoff is Professor and Director of the Perception, Cognition, and Action Department at the Max Planck Institute for Biological Cybernetics in Tbingen.
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