An effective method of multi-label feature selection employing evolutionary algorithms

Author(s):  
Shima Kashef ◽  
Hossein Nezamabadi-pour
2018 ◽  
Vol 7 (1) ◽  
pp. 9-24
Author(s):  
Mohammad Masoud Javidi

Finding a subset of features from a large data set is a problem that arises in many fields of study. It is important to have an effective subset of features that is selected for the system to provide acceptable performance. This will lead us in a direction that to use meta-heuristic algorithms to find the optimal subset of features. The performance of evolutionary algorithms is dependent on many parameters which have significant impact on its performance, and these algorithms usually use a random process to set parameters. The nature of chaos is apparently random and unpredictable; however it also deterministic, it can suitable alternative instead of random process in meta-heuristic algorithms


IEEE Access ◽  
2020 ◽  
Vol 8 ◽  
pp. 181683-181697
Author(s):  
Robson P. Bonidia ◽  
Jaqueline Sayuri Machida ◽  
Tatianne C. Negri ◽  
Wonder A. L. Alves ◽  
Andre Y. Kashiwabara ◽  
...  

2017 ◽  
Vol 7 (1.3) ◽  
pp. 140
Author(s):  
Prasanna Moorthi N ◽  
Mathivanan V

Opinion mining analyses people’s opinions, evaluations, sentiments, attitudes, appraisals and emotions to entities like products, organizations, services, issues, individuals, topics, events and their attributes. It is a large problem space having high feature dimensionality. Feature extraction is important in opinion mining as customers do not usually express product opinions totally, but separately based on individual features. Two tasks should be accomplished in feature-based opinion mining. First, product features on which reviewers expressed opinions must be identified and extracted. Second, opinion orientation or polarities must be determined. Finally, opinion mining summarizes extracted features and opinions. In this work a novel wrapper based feature selection mechanism using concept based feature expansion is proposed. The wrapper based technique uses the principles of evolutionary algorithms.


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