A novel hybrid wrapper–filter approach based on genetic algorithm, particle swarm optimization for feature subset selection

The classification is one of the main technique of machine learning science. In many problems, the data sets have a high dimensionality that the existence of all features is not important to the purpose of the problem, and this will decrease the accuracy and performance of the algorithm. In this sit...

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Veröffentlicht in:Journal of ambient intelligence and humanized computing Jg. 11; H. 3; S. 1105 - 1127
Hauptverfasser: Moslehi, Fateme, Haeri, Abdorrahman
Format: Journal Article
Sprache:Englisch
Veröffentlicht: Berlin/Heidelberg Springer Berlin Heidelberg 01.03.2020
Springer Nature B.V
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ISSN:1868-5137, 1868-5145
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Abstract The classification is one of the main technique of machine learning science. In many problems, the data sets have a high dimensionality that the existence of all features is not important to the purpose of the problem, and this will decrease the accuracy and performance of the algorithm. In this situation, the feature selection will play a significant role, and by eliminating unrelated features, the efficiency of the algorithm will be increased. A hybrid filter-wrapper method is proposed in the present study for feature subset selection established with integration of evolutionary based genetic algorithms (GA) and particle swarm optimization (PSO). The presented method mainly aims to reduce the complication of calculation and the search time expended to achieve an optimum solution to the high dimensional datasets feature selection problem. The proposed method, named smart HGP-FS, utilizes artificial neural network (ANN) in the fitness function. The filter and wrapper methods are integrated in order to take the benefit of filter technique acceleration and the wrapper technique vigor for selection of dataset efficacious characteristics. Some dataset characteristics are eliminated through the filter phase, which in turn reduces complex computations and search time in the wrapper phase. Comparisons have been made for the effectiveness of the proposed hybrid algorithm with the usability of three hybrid filter-wrapper methods, two pure wrapper algorithms, two pure filter procedures, and two traditional wrapper feature selection techniques. The findings obtained over real-world datasets show the efficiency of the presented algorithm. The outcomes of algorithm examination on five datasets reveal that the developed method is able to obtain a more accurate classification and to remove unsuitable and unessential characteristics more effectively relative to the other approaches.
AbstractList The classification is one of the main technique of machine learning science. In many problems, the data sets have a high dimensionality that the existence of all features is not important to the purpose of the problem, and this will decrease the accuracy and performance of the algorithm. In this situation, the feature selection will play a significant role, and by eliminating unrelated features, the efficiency of the algorithm will be increased. A hybrid filter-wrapper method is proposed in the present study for feature subset selection established with integration of evolutionary based genetic algorithms (GA) and particle swarm optimization (PSO). The presented method mainly aims to reduce the complication of calculation and the search time expended to achieve an optimum solution to the high dimensional datasets feature selection problem. The proposed method, named smart HGP-FS, utilizes artificial neural network (ANN) in the fitness function. The filter and wrapper methods are integrated in order to take the benefit of filter technique acceleration and the wrapper technique vigor for selection of dataset efficacious characteristics. Some dataset characteristics are eliminated through the filter phase, which in turn reduces complex computations and search time in the wrapper phase. Comparisons have been made for the effectiveness of the proposed hybrid algorithm with the usability of three hybrid filter-wrapper methods, two pure wrapper algorithms, two pure filter procedures, and two traditional wrapper feature selection techniques. The findings obtained over real-world datasets show the efficiency of the presented algorithm. The outcomes of algorithm examination on five datasets reveal that the developed method is able to obtain a more accurate classification and to remove unsuitable and unessential characteristics more effectively relative to the other approaches.
Author Moslehi, Fateme
Haeri, Abdorrahman
Author_xml – sequence: 1
  givenname: Fateme
  surname: Moslehi
  fullname: Moslehi, Fateme
  organization: Department of Industrial Engineering, Iran University of Science and Technology
– sequence: 2
  givenname: Abdorrahman
  surname: Haeri
  fullname: Haeri, Abdorrahman
  email: ahaeri@iust.ac.ir
  organization: Department of Industrial Engineering, Iran University of Science and Technology
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Issue 3
Keywords Hybrid (wrapper–filter) approach
Feature selection
Multi-objective optimization
Genetic algorithm
Particle swarm optimization (PSO)
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SubjectTerms Accuracy
Artificial Intelligence
Artificial neural networks
Classification
Computational Intelligence
Data mining
Datasets
Efficiency
Energy consumption
Engineering
Evolutionary algorithms
Exploitation
Feature selection
Genetic algorithms
Heuristic
Internet
Machine learning
Neural networks
Optimization
Original Research
Particle swarm optimization
Radio frequency identification
Robotics and Automation
Sensors
Traveling salesman problem
User Interfaces and Human Computer Interaction
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