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      Enhancing Prediction of Brain Tumor Classification Using Images and Numerical Data Features

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      Diagnostics
      MDPI AG

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          Abstract

          Brain tumors, along with other diseases that harm the neurological system, are a significant contributor to global mortality. Early diagnosis plays a crucial role in effectively treating brain tumors. To distinguish individuals with tumors from those without, this study employs a combination of images and data-based features. In the initial phase, the image dataset is enhanced, followed by the application of a UNet transfer-learning-based model to accurately classify patients as either having tumors or being normal. In the second phase, this research utilizes 13 features in conjunction with a voting classifier. The voting classifier incorporates features extracted from deep convolutional layers and combines stochastic gradient descent with logistic regression to achieve better classification results. The reported accuracy score of 0.99 achieved by both proposed models shows its superior performance. Also, comparing results with other supervised learning algorithms and state-of-the-art models validates its performance.

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          Random Forests

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            Greedy function approximation: A gradient boosting machine.

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              Bagging predictors

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                Author and article information

                Contributors
                Journal
                DIAGC9
                Diagnostics
                Diagnostics
                MDPI AG
                2075-4418
                August 2023
                July 31 2023
                : 13
                : 15
                : 2544
                Article
                10.3390/diagnostics13152544
                b6236991-ecbd-4469-b6f5-f10850fee7c7
                © 2023

                https://creativecommons.org/licenses/by/4.0/

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