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Multiobjective Evolutionary Path Planning via Sugeno-Based Tournament SelectionThis paper introduces a new tournament selection algorithm that can be used for evolutionary path planning systems. The fuzzy (Sugeno) tournament selection algorithm (STSA) described in this paper selects candidate paths (CPs) to be parents and undergo reproduction based on: (1) path feasibility, (2) the euclidean distance of a path from the origin to its destination, and (3) the average change in the slope of a path. In this paper, we provide a detailed description of the fuzzy inference system used in the STSA as well as some examples of its usefulness. We then use 12 instances of our STSA to rank a population of CPs based on the above criteria. We also show how the STSA can obviate the need for the development of an explicit (lexicographic multiobjective) evaluation function and use it to develop multiobjective motion paths.
Document ID
20000032267
Acquisition Source
Armstrong Flight Research Center
Document Type
Conference Paper
Authors
Dozier, Gerry
(Auburn Univ. AL United States)
McCullough, Shaun
(Auburn Univ. AL United States)
Homaifar, Abdollah
(North Carolina Agricultural and Technical State Univ. Greensboro, NC United States)
Esterline, Albert
(North Carolina Agricultural and Technical State Univ. Greensboro, NC United States)
Date Acquired
August 19, 2013
Publication Date
February 22, 1998
Publication Information
Publication: NASA University Research Centers Technical Advances in Aeronautics, Space Sciences and Technology, Earth Systems Sciences, Global Hydrology, and Education
Volume: 2 and 3
Subject Category
Administration And Management
Report/Patent Number
98URC131
Funding Number(s)
CONTRACT_GRANT: ACE-48146
CONTRACT_GRANT: NAG4-131
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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