2018
DOI: 10.5815/ijmecs.2018.07.06
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The Effect of Evolutionary Algorithm in Gene Subset Selection for Cancer Classification

Abstract: The fact that reflects the cancer research consequences shows that still there are improvements that should be investigated in the stream of cancer in future. This leads the researchers to actively involve further in cancer research field. As an invention, a hybrid machine learning method is proposed in this study where two filters are assessed along with a wrapper approach. Typically, filters prioritize the features while, wrappers contribute in subset identification. Though both filters and wrappers exist in… Show more

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Cited by 6 publications
(3 citation statements)
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“…The meta-heuristic algorithms and its improvement must have a perfect balance between exploring and exploiting operations to do both global and local searches well. As a result, many researchers proposed a hybrid algorithm that combines two or more algorithms to improve algorithm search and find optimal path planning with a speed up convergence rate [14,15,16]. Fig.…”
Section: Discussionmentioning
confidence: 99%
See 1 more Smart Citation
“…The meta-heuristic algorithms and its improvement must have a perfect balance between exploring and exploiting operations to do both global and local searches well. As a result, many researchers proposed a hybrid algorithm that combines two or more algorithms to improve algorithm search and find optimal path planning with a speed up convergence rate [14,15,16]. Fig.…”
Section: Discussionmentioning
confidence: 99%
“…As a result, many researchers proposed a hybrid algorithm that combines two or more algorithms to improve algorithm search and find optimal path planning with a speed up convergence rate. [14][15][16]. The proposed method's goal is detecting the security threats in the virtual machines by using the feature selection-based multi-objective method of firefly and harmony search optimization algorithm.…”
Section: Introductionmentioning
confidence: 99%
“…the developed methods show a high accuracy of the task of identifying the material class, which determines the possibility of their practical use for solving such tasks; the Method 2 should be used for solving classification tasks in the Material Science field in case that doesn't impose restrictions for their training time; the Method 1 shows the greatest accuracy of the solution of the classification task among all the considered ones. It only shows a slightly worse result compared to the basic method for the performance of the training procedure; based on the accuracy and speed of the Method 1 work, it can be used to solve applied classification tasks in the case of large dimensions of the input data; the proposed approach shows a high accuracy of calculating the Wiener polynomial coefficients, which enables its application in the fields of medicine [27], education [28], image processing [29], in particular, for solving tasks of both classification and regression.…”
Section: The Number Of Correctly Classified Vectorsmentioning
confidence: 99%