OptiSelect and EnShap: Integrating machine learning and game theory for ischemic stroke prediction
Stroke analysis using game theory and machine learning techniques. The study investigates the use of the Shapley value in predictive ischemic brain stroke analysis. Initially, preference algorithms identify the most important features in various machine learning models, including logistic regression...
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| Published in | PloS one Vol. 20; no. 8; p. e0328967 |
|---|---|
| Main Authors | , , , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
United States
Public Library of Science
13.08.2025
Public Library of Science (PLoS) |
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| Online Access | Get full text |
| ISSN | 1932-6203 1932-6203 |
| DOI | 10.1371/journal.pone.0328967 |
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| Abstract | Stroke analysis using game theory and machine learning techniques. The study investigates the use of the Shapley value in predictive ischemic brain stroke analysis. Initially, preference algorithms identify the most important features in various machine learning models, including logistic regression, K-nearest neighbor, decision tree, support vector machine (linear kernel), support vector machine ( RBF kernel), neural networks, etc. For each sample, the top 3, 4, and 5 features are evaluated and selected to evaluate their performance. The Shapley value method was used to rank the models using their best four features based on their predictive capabilities. As a result, better-performing models were found. Afterward, ensemble machine learning methods were used to find the most accurate predictions using the top 5 models ranked by shapely value. The research demonstrates an impressive accuracy of 92.39%, surpassing other proposed models’ performance. This study highlights the utility of combining game theory and machine learning in Ischemic stroke prediction and the potential of ensemble learning methods to increase predictive accuracy in ischemic stroke analysis. |
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| AbstractList | Stroke analysis using game theory and machine learning techniques. The study investigates the use of the Shapley value in predictive ischemic brain stroke analysis. Initially, preference algorithms identify the most important features in various machine learning models, including logistic regression, K-nearest neighbor, decision tree, support vector machine (linear kernel), support vector machine ( RBF kernel), neural networks, etc. For each sample, the top 3, 4, and 5 features are evaluated and selected to evaluate their performance. The Shapley value method was used to rank the models using their best four features based on their predictive capabilities. As a result, better-performing models were found. Afterward, ensemble machine learning methods were used to find the most accurate predictions using the top 5 models ranked by shapely value. The research demonstrates an impressive accuracy of 92.39%, surpassing other proposed models' performance. This study highlights the utility of combining game theory and machine learning in Ischemic stroke prediction and the potential of ensemble learning methods to increase predictive accuracy in ischemic stroke analysis. Stroke analysis using game theory and machine learning techniques. The study investigates the use of the Shapley value in predictive ischemic brain stroke analysis. Initially, preference algorithms identify the most important features in various machine learning models, including logistic regression, K-nearest neighbor, decision tree, support vector machine (linear kernel), support vector machine ( RBF kernel), neural networks, etc. For each sample, the top 3, 4, and 5 features are evaluated and selected to evaluate their performance. The Shapley value method was used to rank the models using their best four features based on their predictive capabilities. As a result, better-performing models were found. Afterward, ensemble machine learning methods were used to find the most accurate predictions using the top 5 models ranked by shapely value. The research demonstrates an impressive accuracy of 92.39%, surpassing other proposed models' performance. This study highlights the utility of combining game theory and machine learning in Ischemic stroke prediction and the potential of ensemble learning methods to increase predictive accuracy in ischemic stroke analysis.Stroke analysis using game theory and machine learning techniques. The study investigates the use of the Shapley value in predictive ischemic brain stroke analysis. Initially, preference algorithms identify the most important features in various machine learning models, including logistic regression, K-nearest neighbor, decision tree, support vector machine (linear kernel), support vector machine ( RBF kernel), neural networks, etc. For each sample, the top 3, 4, and 5 features are evaluated and selected to evaluate their performance. The Shapley value method was used to rank the models using their best four features based on their predictive capabilities. As a result, better-performing models were found. Afterward, ensemble machine learning methods were used to find the most accurate predictions using the top 5 models ranked by shapely value. The research demonstrates an impressive accuracy of 92.39%, surpassing other proposed models' performance. This study highlights the utility of combining game theory and machine learning in Ischemic stroke prediction and the potential of ensemble learning methods to increase predictive accuracy in ischemic stroke analysis. |
| Audience | Academic |
| Author | Qin, Hong Swain, Sujata Chakraborty, Pritam Mallik, Saurav Parui, Sricheta Bandyopadhyay, Anjan Banerjee, Partha Sarathy Si, Tapas |
| AuthorAffiliation | 2 Department of Computer Science and Engineering, Jaypee University of Engineering and Technology, Guna, Mohanpur, Madhya Pradesh, India 6 Department of Pharmacology and Toxicology, University of Arizona, Tucson, Arizona, United States of America 1 School of Computer Engineering, Bhubaneswar, Kalinga Institute of Industrial Technology, Bhubaneswar, Odisha, India 3 AI Innovation Lab, Department of Computer Science and Engineering, University of Engineering and Management, Jaipur, Rajasthan, India VIT-AP Campus, INDIA 4 School of Data Science, Department of Computer Science, Old Dominion University, Norfolk, Virginia, United States of America 5 Department of Environmental Health, Harvard T. H. Chan School of Public Health, Boston, Massachusetts, United States of America |
| AuthorAffiliation_xml | – name: 5 Department of Environmental Health, Harvard T. H. Chan School of Public Health, Boston, Massachusetts, United States of America – name: 4 School of Data Science, Department of Computer Science, Old Dominion University, Norfolk, Virginia, United States of America – name: 1 School of Computer Engineering, Bhubaneswar, Kalinga Institute of Industrial Technology, Bhubaneswar, Odisha, India – name: 2 Department of Computer Science and Engineering, Jaypee University of Engineering and Technology, Guna, Mohanpur, Madhya Pradesh, India – name: 3 AI Innovation Lab, Department of Computer Science and Engineering, University of Engineering and Management, Jaipur, Rajasthan, India – name: 6 Department of Pharmacology and Toxicology, University of Arizona, Tucson, Arizona, United States of America – name: VIT-AP Campus, INDIA |
| Author_xml | – sequence: 1 givenname: Pritam surname: Chakraborty fullname: Chakraborty, Pritam – sequence: 2 givenname: Anjan surname: Bandyopadhyay fullname: Bandyopadhyay, Anjan – sequence: 3 givenname: Sricheta surname: Parui fullname: Parui, Sricheta – sequence: 4 givenname: Sujata surname: Swain fullname: Swain, Sujata – sequence: 5 givenname: Partha Sarathy surname: Banerjee fullname: Banerjee, Partha Sarathy – sequence: 6 givenname: Tapas orcidid: 0000-0001-8267-0304 surname: Si fullname: Si, Tapas – sequence: 7 givenname: Hong orcidid: 0000-0002-1060-6722 surname: Qin fullname: Qin, Hong – sequence: 8 givenname: Saurav orcidid: 0000-0003-4107-6784 surname: Mallik fullname: Mallik, Saurav |
| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/40802707$$D View this record in MEDLINE/PubMed |
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| SubjectTerms | Accuracy Algorithms Artificial intelligence Brain research Classification Clinical medicine Computer and Information Sciences Datasets Decision making Decision Trees Deep learning Diagnosis Ensemble learning Feature selection Game Theory Health aspects Humans Innovations Ischemia Ischemic Stroke - diagnosis Kernel functions Learning algorithms Logistic Models Machine Learning Medical prognosis Medicine and Health Sciences Mortality Neural networks Neural Networks, Computer Patients Performance evaluation Physical Sciences Predictions Quantum physics Regression analysis Research and Analysis Methods Risk assessment Risk factors Stroke Stroke (Disease) Support Vector Machine Support vector machines |
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| Title | OptiSelect and EnShap: Integrating machine learning and game theory for ischemic stroke prediction |
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