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Dexterity optimization of kinematically redundant manipulators in the presence of joint failures

dc.contributor.authorMaciejewski, Anthony A., author
dc.contributor.authorLewis, Christopher L., author
dc.contributor.authorElsevier Science Ltd., publisher
dc.date.accessioned2007-01-03T08:09:30Z
dc.date.available2007-01-03T08:09:30Z
dc.date.issued1994
dc.description.abstractRobotic manipulators working in remote or hazardous environments require additional measures to ensure their usability upon the failure of an actuator. This work considers failure modes that result in an immobilized joint and uses the concept of worst-case dexterity to define kinematic and dynamic fault tolerance measures for redundant manipulators. These measures are then used to specify the operating configuration which is optimal in the sense that the manipulator's dexterity remains high even if one of its joints fails in a locked position. The close relationship between fault tolerance and dexterity is examined using a simple planar manipulator as an example. It is demonstrated that an inverse kinematic function which maintains a high level of fault tolerance also keeps the manipulator in well-conditioned configurations known to have desirable properties.
dc.format.mediumborn digital
dc.format.mediumarticles
dc.identifier.bibliographicCitationLewis, Christopher L. and Anthony A. Maciejewski, Dexterity Optimization of Kinematically Redundant Manipulators in the Presence of Joint Failures, Computers & Electrical Engineering 20, no. 3 (May 1994): 273-288.
dc.identifier.urihttp://hdl.handle.net/10217/67345
dc.languageEnglish
dc.language.isoeng
dc.publisherColorado State University. Libraries
dc.relation.ispartofFaculty Publications
dc.rights©1994 Elsevier Science Ltd.
dc.rightsCopyright and other restrictions may apply. User is responsible for compliance with all applicable laws. For information about copyright law, please see https://libguides.colostate.edu/copyright.
dc.subjectfault tolerance
dc.subjectrobotics
dc.subjectdexterity
dc.subjectkinematically redundant
dc.titleDexterity optimization of kinematically redundant manipulators in the presence of joint failures
dc.typeText

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