A comprehensive survey on feature selection in the various fields of machine learning
In Machine Learning (ML), Feature Selection (FS) plays a crucial part in reducing data’s dimensionality and enhancing any proposed framework’s performance. However, in real-world applications, FS work suffers from high dimensionality, computational and storage complexity, noisy or ambiguous nature,...
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Published in | Applied intelligence (Dordrecht, Netherlands) Vol. 52; no. 4; pp. 4543 - 4581 |
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Main Authors | , |
Format | Journal Article |
Language | English |
Published |
New York
Springer US
01.03.2022
Springer Nature B.V |
Subjects | |
Online Access | Get full text |
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Abstract | In Machine Learning (ML), Feature Selection (FS) plays a crucial part in reducing data’s dimensionality and enhancing any proposed framework’s performance. However, in real-world applications, FS work suffers from high dimensionality, computational and storage complexity, noisy or ambiguous nature, high performance, etc. The area of FS is very vast and challenging in its nature. There are lots of work that have been reported on FS over the various area of applications. This paper has discussed FS’s framework and the multiple models of FS with detailed descriptions. We have also classified the various FS algorithms with respect to the data, i.e., structured or labeled data and unstructured data for the different applications of ML. We have also discussed what essential features are, the commonly used FS methods, the widely used datasets, and the widely used work done in the various ML fields for the FS task. Here we try to view the multiple comparison experimental results of FS work in different result discussions. This paper draws a descriptive survey on FS with the associated area of real-world problem domains. This paper’s main objective is to understand the main idea of FS work and identify the core idea of how FS will be applicable in various problem domains. |
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AbstractList | In Machine Learning (ML), Feature Selection (FS) plays a crucial part in reducing data’s dimensionality and enhancing any proposed framework’s performance. However, in real-world applications, FS work suffers from high dimensionality, computational and storage complexity, noisy or ambiguous nature, high performance, etc. The area of FS is very vast and challenging in its nature. There are lots of work that have been reported on FS over the various area of applications. This paper has discussed FS’s framework and the multiple models of FS with detailed descriptions. We have also classified the various FS algorithms with respect to the data, i.e., structured or labeled data and unstructured data for the different applications of ML. We have also discussed what essential features are, the commonly used FS methods, the widely used datasets, and the widely used work done in the various ML fields for the FS task. Here we try to view the multiple comparison experimental results of FS work in different result discussions. This paper draws a descriptive survey on FS with the associated area of real-world problem domains. This paper’s main objective is to understand the main idea of FS work and identify the core idea of how FS will be applicable in various problem domains. |
Author | Dhal, Pradip Azad, Chandrashekhar |
Author_xml | – sequence: 1 givenname: Pradip surname: Dhal fullname: Dhal, Pradip email: pradip1780@gmail.com organization: Department of Compter Applications, National Institute of Technology – sequence: 2 givenname: Chandrashekhar surname: Azad fullname: Azad, Chandrashekhar organization: Department of Compter Applications, National Institute of Technology |
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PQPubID | 326365 |
PageCount | 39 |
ParticipantIDs | proquest_journals_2631475541 crossref_primary_10_1007_s10489_021_02550_9 crossref_citationtrail_10_1007_s10489_021_02550_9 springer_journals_10_1007_s10489_021_02550_9 |
ProviderPackageCode | CITATION AAYXX |
PublicationCentury | 2000 |
PublicationDate | 20220300 2022-03-00 20220301 |
PublicationDateYYYYMMDD | 2022-03-01 |
PublicationDate_xml | – month: 3 year: 2022 text: 20220300 |
PublicationDecade | 2020 |
PublicationPlace | New York |
PublicationPlace_xml | – name: New York – name: Boston |
PublicationSubtitle | The International Journal of Research on Intelligent Systems for Real Life Complex Problems |
PublicationTitle | Applied intelligence (Dordrecht, Netherlands) |
PublicationTitleAbbrev | Appl Intell |
PublicationYear | 2022 |
Publisher | Springer US Springer Nature B.V |
Publisher_xml | – name: Springer US – name: Springer Nature B.V |
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Snippet | In Machine Learning (ML), Feature Selection (FS) plays a crucial part in reducing data’s dimensionality and enhancing any proposed framework’s performance.... |
SourceID | proquest crossref springer |
SourceType | Aggregation Database Enrichment Source Index Database Publisher |
StartPage | 4543 |
SubjectTerms | Algorithms Artificial Intelligence Computer Science Domains Feature selection Machine learning Machines Manufacturing Mechanical Engineering Processes Unstructured data |
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Title | A comprehensive survey on feature selection in the various fields of machine learning |
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