Advances in Henry Gas Solubility Optimization: A Physics-Inspired Metaheuristic Algorithm With Its Variants and Applications
The Henry Gas Solubility Optimization (HGSO) is a physics-based metaheuristic inspired by Henry’s law, which describes the solubility of the gas in a liquid under specific pressure conditions. Since its introduction by Hashim et al. in 2019, HGSO has gained significant attention for its u...
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IEEE
2024-01-01
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Series: | IEEE Access |
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Online Access: | https://ieeexplore.ieee.org/document/10433490/ |
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author | Mohammed A. El-Shorbagy Anas Bouaouda Hossam A. Nabwey Laith Abualigah Fatma A. Hashim |
author_facet | Mohammed A. El-Shorbagy Anas Bouaouda Hossam A. Nabwey Laith Abualigah Fatma A. Hashim |
author_sort | Mohammed A. El-Shorbagy |
collection | DOAJ |
description | The Henry Gas Solubility Optimization (HGSO) is a physics-based metaheuristic inspired by Henry’s law, which describes the solubility of the gas in a liquid under specific pressure conditions. Since its introduction by Hashim et al. in 2019, HGSO has gained significant attention for its unique features, including minimal adaptive parameters and a balanced exploration-exploitation trade-off, leading to favorable convergence. This study provides an up-to-date survey of HGSO, covering the walk through the historical development of HGSO, its modifications, and hybridizations with other algorithms, showcasing its adaptability and potential for synergy. Recent variants of HGSO are categorized into modified, hybridized, and multi-objective versions, and the review explores its main applications, demonstrating its effectiveness in solving complex problems. The evaluation includes a discussion of the algorithm’s strengths and weaknesses. This comprehensive review, featuring graphical and tabular comparisons, not only indicates potential future directions in the field but also serves as a valuable resource for researchers seeking a deep understanding of HGSO and its advanced versions. As physics-based metaheuristic algorithms gain prominence for solving intricate optimization problems, this study provides insights into the adaptability and applications of HGSO across diverse domains. |
first_indexed | 2024-03-07T22:03:09Z |
format | Article |
id | doaj.art-4c388136807c4867bd21af20d98ea36f |
institution | Directory Open Access Journal |
issn | 2169-3536 |
language | English |
last_indexed | 2024-03-07T22:03:09Z |
publishDate | 2024-01-01 |
publisher | IEEE |
record_format | Article |
series | IEEE Access |
spelling | doaj.art-4c388136807c4867bd21af20d98ea36f2024-02-24T00:01:02ZengIEEEIEEE Access2169-35362024-01-0112260622609510.1109/ACCESS.2024.336570010433490Advances in Henry Gas Solubility Optimization: A Physics-Inspired Metaheuristic Algorithm With Its Variants and ApplicationsMohammed A. El-Shorbagy0Anas Bouaouda1Hossam A. Nabwey2Laith Abualigah3https://orcid.org/0000-0002-2203-4549Fatma A. Hashim4Department of Mathematics, College of Science and Humanities in Al-Kharj, Prince Sattam bin Abdulaziz University, Al-Kharj, Saudi ArabiaFaculty of Science and Technology, Hassan II University of Casablanca, Mohammedia, MoroccoDepartment of Basic Engineering Science, Faculty of Engineering, Menoufia University, Shebin El-Kom, EgyptArtificial Intelligence and Sensing Technologies (AIST) Research Center, University of Tabuk, Tabuk, Saudi ArabiaFaculty of Engineering, Helwan University, Cairo, EgyptThe Henry Gas Solubility Optimization (HGSO) is a physics-based metaheuristic inspired by Henry’s law, which describes the solubility of the gas in a liquid under specific pressure conditions. Since its introduction by Hashim et al. in 2019, HGSO has gained significant attention for its unique features, including minimal adaptive parameters and a balanced exploration-exploitation trade-off, leading to favorable convergence. This study provides an up-to-date survey of HGSO, covering the walk through the historical development of HGSO, its modifications, and hybridizations with other algorithms, showcasing its adaptability and potential for synergy. Recent variants of HGSO are categorized into modified, hybridized, and multi-objective versions, and the review explores its main applications, demonstrating its effectiveness in solving complex problems. The evaluation includes a discussion of the algorithm’s strengths and weaknesses. This comprehensive review, featuring graphical and tabular comparisons, not only indicates potential future directions in the field but also serves as a valuable resource for researchers seeking a deep understanding of HGSO and its advanced versions. As physics-based metaheuristic algorithms gain prominence for solving intricate optimization problems, this study provides insights into the adaptability and applications of HGSO across diverse domains.https://ieeexplore.ieee.org/document/10433490/Engineering problemsglobal optimizationHenry gas solubility optimizationmetaheuristic algorithm |
spellingShingle | Mohammed A. El-Shorbagy Anas Bouaouda Hossam A. Nabwey Laith Abualigah Fatma A. Hashim Advances in Henry Gas Solubility Optimization: A Physics-Inspired Metaheuristic Algorithm With Its Variants and Applications IEEE Access Engineering problems global optimization Henry gas solubility optimization metaheuristic algorithm |
title | Advances in Henry Gas Solubility Optimization: A Physics-Inspired Metaheuristic Algorithm With Its Variants and Applications |
title_full | Advances in Henry Gas Solubility Optimization: A Physics-Inspired Metaheuristic Algorithm With Its Variants and Applications |
title_fullStr | Advances in Henry Gas Solubility Optimization: A Physics-Inspired Metaheuristic Algorithm With Its Variants and Applications |
title_full_unstemmed | Advances in Henry Gas Solubility Optimization: A Physics-Inspired Metaheuristic Algorithm With Its Variants and Applications |
title_short | Advances in Henry Gas Solubility Optimization: A Physics-Inspired Metaheuristic Algorithm With Its Variants and Applications |
title_sort | advances in henry gas solubility optimization a physics inspired metaheuristic algorithm with its variants and applications |
topic | Engineering problems global optimization Henry gas solubility optimization metaheuristic algorithm |
url | https://ieeexplore.ieee.org/document/10433490/ |
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