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GALE: Geometric Active Learning for Search-Based Software Engineering

delete2015-10-01
delete25
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OA
AI
J
Joseph Krall *
T
Tim Menzies
M
Misty Davies
DOI:10.1109/TSE.2015.2432024delete
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摘要

摘要

En 中文
Multi-objective evolutionary algorithms (MOEAs) help software engineers find novel solutions to complex problems. When automatic tools explore too many options, they are slow to use and hard to comprehend. GALE is a near-linear time MOEA that builds a piecewise approximation to the surface of best solutions along the Pareto frontier. For each piece, GALE mutates solutions towards the better end. In numerous case studies, GALE finds comparable solutions to standard methods (NSGA-II, SPEA2) using far fewer evaluations (e.g. 20 evaluations, not 1,000). GALE is recommended when a model is expensive to evaluate, or when some audience needs to browse and understand how an MOEA has made its conclusions.
Keyword:
Multi-objective optimization
search based software engineering
active learning
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IEEE Transactions on Software Engineering 封面图
IEEE Transactions on Software Engineering
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2.8K
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national aeronautics & space administration (nasa)
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被引数: 46
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North Carolina State University
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被引数: 3.7W
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