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      Multimodal Brain Tumor Classification Using Deep Learning and Robust Feature Selection: A Machine Learning Application for Radiologists

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          Abstract

          Manual identification of brain tumors is an error-prone and tedious process for radiologists; therefore, it is crucial to adopt an automated system. The binary classification process, such as malignant or benign is relatively trivial; whereas, the multimodal brain tumors classification (T1, T2, T1CE, and Flair) is a challenging task for radiologists. Here, we present an automated multimodal classification method using deep learning for brain tumor type classification. The proposed method consists of five core steps. In the first step, the linear contrast stretching is employed using edge-based histogram equalization and discrete cosine transform (DCT). In the second step, deep learning feature extraction is performed. By utilizing transfer learning, two pre-trained convolutional neural network (CNN) models, namely VGG16 and VGG19, were used for feature extraction. In the third step, a correntropy-based joint learning approach was implemented along with the extreme learning machine (ELM) for the selection of best features. In the fourth step, the partial least square (PLS)-based robust covariant features were fused in one matrix. The combined matrix was fed to ELM for final classification. The proposed method was validated on the BraTS datasets and an accuracy of 97.8%, 96.9%, 92.5% for BraTs2015, BraTs2017, and BraTs2018, respectively, was achieved.

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          Most cited references39

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          Brain tumor classification using deep CNN features via transfer learning

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            Multi-Grade Brain Tumor Classification using Deep CNN with Extensive Data Augmentation

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              Extreme learning machine: a new learning scheme of feedforward neural networks

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                Author and article information

                Journal
                Diagnostics (Basel)
                Diagnostics (Basel)
                diagnostics
                Diagnostics
                MDPI
                2075-4418
                06 August 2020
                August 2020
                : 10
                : 8
                : 565
                Affiliations
                [1 ]Department of Computer Science, HITEC University, Museum Road, Taxila 47080, Pakistan; attique.khan440@ 123456gmail.com
                [2 ]Department of Computer Engineering, HITEC University, Museum Road, Taxila 47080, Pakistan; imran.ashraf@ 123456hitecuni.edu.pk
                [3 ]College of Computer Science and Engineering, University of Ha’il, Ha’il 81451, Saudi Arabia; m.alhaisoni@ 123456uoh.edu.sa
                [4 ]Faculty of Applied Mathematics, Silesian University of Technology, 44-100 Gliwice, Poland
                [5 ]Department of Applied Informatics, Vytautas Magnus University, 44404 Kaunas, Lithuania
                [6 ]Department of Intelligent Computer Systems, Czestochowa University of Technology, 42-200 Czestochowa, Poland; rafal.scherer@ 123456pcz.pl
                [7 ]College of Computer and Information Sciences, Prince Sultan University, Riyadh 11586, Saudi Arabia; rkamjad@ 123456gmail.com
                [8 ]Division of Computer Science, Mathematics and Science, Collins College of Professional Studies, St. John’s University, New York, NY 11439, USA; bukharis@ 123456stjohns.edu
                Author notes
                Author information
                https://orcid.org/0000-0002-6347-4890
                https://orcid.org/0000-0001-9990-1084
                https://orcid.org/0000-0001-9592-262X
                https://orcid.org/0000-0002-3817-2655
                https://orcid.org/0000-0002-6517-5261
                Article
                diagnostics-10-00565
                10.3390/diagnostics10080565
                7459797
                32781795
                ee8795d4-4a3a-4966-ac32-37f9f67a5c4d
                © 2020 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 18 June 2020
                : 04 August 2020
                Categories
                Article

                brain tumor,healthcare,linear contrast,transfer learning,deep learning features,feature selection,feature fusion,pls,elm

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