基于CNN的MRI脑图像训练与分类

V. Bhanumathi, R. Sangeetha
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引用次数: 14

摘要

脑瘤只不过是细胞不受控制地自我繁殖而引起的异常生长。治疗计划是提高肿瘤患者生活质量的关键环节。近年来,深度学习在解决包括医学图像分析在内的各个领域的问题方面获得了巨大的名气。如今,CNN在磁共振成像(MRI)图像中对脑肿瘤进行微调和分析方面发挥着重要作用。本文介绍了不同的分类技术,如Alex Net、Vgg Net和Google Net,用于脑肿瘤图像的预训练和微调过程。在此分析中,将所提取的特征与Alex Net、Vgg Net和Google Net等分类器的分类结果进行了比较,并基于迭代、耗时和准确性验证了所提出的技术在MRI脑图像上的性能和质量。
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CNN Based Training and Classification of MRI Brain Images
Brain tumor is nothing but an abnormal growth caused by cells reproducing themselves in an uncontrolled manner. The treatment planning is a key stage to improve the quality of life of oncological patients. In recent years, deep learning has gained a huge fame in solving problems from various fields including Medical Image Analysis. Nowadays, CNN plays a major role in fine tuning and analyzing the brain tumors present in the Magnetic Resonance Imaging (MRI) images. In this paper, we introduced different classification techniques such as Alex Net, Vgg Net and Google Net, for pre-trained and fine tuning process of brain tumor images. For this analysis, the extracted features and the results of the classifiers such as Alex Net, Vgg Net and Google Net are compared the results of proposed technique are validated for its performance and quality for MRI brain images based on iteration, time elapsed and accuracy.
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