Experimental evaluation of an automatic parameter setting system

Finding the parameter setting that will result in the optimal performance of a given algorithm for solving a problem is a tedious task. This paper briefly describes a system that automatically chooses the best algorithm parameter configuration conditioned by the current problem instance to solve. Th...

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Vydáno v:Expert systems with applications Ročník 37; číslo 7; s. 5224 - 5238
Hlavní autoři: Pavón, R., Díaz, F., Laza, R., Luzón, M.V.
Médium: Journal Article
Jazyk:angličtina
Vydáno: Elsevier Ltd 01.07.2010
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ISSN:0957-4174, 1873-6793
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Abstract Finding the parameter setting that will result in the optimal performance of a given algorithm for solving a problem is a tedious task. This paper briefly describes a system that automatically chooses the best algorithm parameter configuration conditioned by the current problem instance to solve. The system uses bayesian networks (BN) and case-based reasoning (CBR) methodology to find such a configuration. CBR provides a mechanism to acquire knowledge about the specific problem domain. BN provide a tool to model quantitative and qualitative relationships between parameters of interest. However, the aim of this work is to empirically evaluate the system described, using as an example the configuration of a genetic algorithm that solves the root identification problem. In this context, we report on several statistically guided experimental evaluations. The experimental results confirm the validity of the proposed system and its potential effectiveness for configuring algorithms.
AbstractList Finding the parameter setting that will result in the optimal performance of a given algorithm for solving a problem is a tedious task. This paper briefly describes a system that automatically chooses the best algorithm parameter configuration conditioned by the current problem instance to solve. The system uses bayesian networks (BN) and case-based reasoning (CBR) methodology to find such a configuration. CBR provides a mechanism to acquire knowledge about the specific problem domain. BN provide a tool to model quantitative and qualitative relationships between parameters of interest. However, the aim of this work is to empirically evaluate the system described, using as an example the configuration of a genetic algorithm that solves the root identification problem. In this context, we report on several statistically guided experimental evaluations. The experimental results confirm the validity of the proposed system and its potential effectiveness for configuring algorithms.
Finding the parameter setting that will result in the optimal performance of a given algorithm for solving a problem is a tedious task. This paper briefly describes a system that automatically chooses the best algorithm parameter configuration conditioned by the current problem instance to solve. The system uses bayesian networks (BN) and case-based reasoning (CBR) methodology to find such a configuration. CBR provides a mechanism to acquire knowledge about the specific problem domain. BN provide a tool to model quantitative and qualitative relationships between parameters of interest. However, the aim of this work is to empirically evaluate the system described, using as an example the configuration of a genetic algorithm that solves the root identification problem. In this context, we report on several statistically guided experimental evaluations. The experimental results confirm the validity of the proposed system and its potential effectiveness for configuring algorithms.
Author Pavón, R.
Luzón, M.V.
Díaz, F.
Laza, R.
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Issue 7
Keywords Setting parameters
Bayesian networks
Constructive geometric constraint solving
Case-based reasoning
Genetic algorithms
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Snippet Finding the parameter setting that will result in the optimal performance of a given algorithm for solving a problem is a tedious task. This paper briefly...
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SubjectTerms Algorithms
Bayesian networks
Boron nitride
Case-based reasoning
Constructive geometric constraint solving
Expert systems
Genetic algorithms
Mathematical models
Networks
Optimization
Setting parameters
Tasks
Title Experimental evaluation of an automatic parameter setting system
URI https://dx.doi.org/10.1016/j.eswa.2009.12.087
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Volume 37
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