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Connectionist model-based stereo vision for teleroboticsAutonomous stereo vision for range measurement could greatly enhance the performance of telerobotic systems. Stereo vision could be a key component for autonomous object recognition and localization, thus enabling the system to perform low-level tasks, and allowing a human operator to perform a supervisory role. The central difficulty in stereo vision is the ambiguity in matching corresponding points in the left and right images. However, if one has a priori knowledge of the characteristics of the objects in the scene, as is often the case in telerobotics, a model-based approach can be taken. Researchers describe how matching ambiguities can be resolved by ensuring that the resulting three-dimensional points are consistent with surface models of the expected objects. A four-layer neural network hierarchy is used in which surface models of increasing complexity are represented in successive layers. These models are represented using a connectionist scheme called parameter networks, in which a parametrized object (for example, a planar patch p=f(h,m sub x, m sub y) is represented by a collection of processing units, each of which corresponds to a distinct combination of parameter values. The activity level of each unit in the parameter network can be thought of as representing the confidence with which the hypothesis represented by that unit is believed. Weights in the network are set so as to implement gradient descent in an energy function.
Document ID
19900006908
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Hoff, William
(Martin Marietta Corp. Denver, CO, United States)
Mathis, Donald
(Martin Marietta Corp. Denver, CO, United States)
Date Acquired
September 6, 2013
Publication Date
November 1, 1989
Publication Information
Publication: NASA, Langley Research Center, Visual Information Processing for Television and Telerobotics
Subject Category
Instrumentation And Photography
Accession Number
90N16224
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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