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A New Approach for Brain Tumor Segmentation and Classification Based on Score Level Fusion Using Transfer Learning

机译:基于转移学习的分数融合的脑肿瘤分割和分类一种新方法

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摘要

Brain tumor is one of the most death defying diseases nowadays. The tumor contains a cluster of abnormal cells grouped around the inner portion of human brain. It affects the brain by squeezing/ damaging healthy tissues. It also amplifies intra cranial pressure and as a result tumor cells growth increases rapidly which may lead to death. It is, therefore desirable to diagnose/ detect brain tumor at an early stage that may increase the patient survival rate. The major objective of this research work is to present a new technique for the detection of tumor. The proposed architecture accurately segments and classifies the benign and malignant tumor cases. Different spatial domain methods are applied to enhance and accurately segment the input images. Moreover Alex and Google networks are utilized for classification in which two score vectors are obtained after the softmax layer. Further, both score vectors are fused and supplied to multiple classifiers along with softmax layer. Evaluation of proposed model is done on top medical image computing and computer-assisted intervention (MICCAI) challenge datasets i.e., multimodal brain tumor segmentation (BRATS) 2013, 2014, 2015, 2016 and ischemic stroke lesion segmentation (ISLES) 2018 respectively.
机译:脑肿瘤是如今最具死亡疾病之一。肿瘤含有围绕人脑的内部分组的异常细胞簇。它通过挤压/损坏健康组织来影响大脑。它还放大颅内压力,结果肿瘤细胞生长迅速增加,这可能导致死亡。因此,希望在可能提高患者存活率的早期阶段诊断/检测脑肿瘤。本研究工作的主要目标是提出一种用于检测肿瘤的新技术。拟议的架构准确地筛分并分类良性和恶性肿瘤病例。应用不同的空间域方法来增强和准确地段分割输入图像。此外,亚历克斯和谷歌网络用于分类,其中在软MAX层之后获得了两个分数向量。此外,分数向量融合并与软MAX层一起融合并提供给多个分类器。拟议模型的评估是在顶级医学图像计算和计算机辅助干预(Miccai)挑战数据集中,即2013,2014,2015,2016和缺血性脑卒中病变分割(Isles)2018。

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