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A Self-Organizing Multiple-View Representation of 3D Objects

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dc.creator Edelman, Shimon
dc.creator Weinshall, Daphna
dc.date 2004-10-04T15:14:24Z
dc.date 2004-10-04T15:14:24Z
dc.date 1989-08-01
dc.date.accessioned 2013-10-09T02:45:52Z
dc.date.available 2013-10-09T02:45:52Z
dc.date.issued 2013-10-09
dc.identifier AIM-1146
dc.identifier http://hdl.handle.net/1721.1/6514
dc.identifier.uri http://koha.mediu.edu.my:8181/xmlui/handle/1721
dc.description We explore representation of 3D objects in which several distinct 2D views are stored for each object. We demonstrate the ability of a two-layer network of thresholded summation units to support such representations. Using unsupervised Hebbian relaxation, we trained the network to recognise ten objects from different viewpoints. The training process led to the emergence of compact representations of the specific input views. When tested on novel views of the same objects, the network exhibited a substantial generalisation capability. In simulated psychophysical experiments, the network's behavior was qualitatively similar to that of human subjects.
dc.format 2399506 bytes
dc.format 1875063 bytes
dc.format application/postscript
dc.format application/pdf
dc.language en_US
dc.relation AIM-1146
dc.title A Self-Organizing Multiple-View Representation of 3D Objects


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