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A neural network based deep learning approach for efficient segmentation of brain tumor medical image data

机译:基于神经网络的高效分割脑肿瘤医学图像数据的深度学习方法

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摘要

Brain tumor image segmentation is process of locating the interesting area in terms of objects, like tumor and extracting it for the further process of the image and getting the boundaries of the image for analysis. The bio-medical brain tumor image segmentation is a great challenging field for the today world active researchers with the standardized image datasets and various metrics used for evaluating and comparing the performance of the new algorithm with existing segmentation algorithms. In recent development, these problems are addressed using various image manipulation tools and rapid growth of computer hardware enhancement. Image segmentation was done in three ways: (1) Manual-based (2) Semi-automated-based (3) Fully automated-based. But still be a short of research in the field of brain tumor segmentation and accurate identification of tumor cells. To overcome all the above-mentioned challenges and complexity of the brain tumor segmentation, it need to understand the pre-processing of the image like, registering the image, correction of bias in image, and non-brain tissue removal. In this paper, we propose a new methodology for segmenting the brain tumor from the affected brain image in a significantly efficient way by using deep learning method.
机译:脑肿瘤图像分割是在物体上定位有趣区域的过程,如肿瘤,并将其提取用于图像的进一步过程并获得图像的边界进行分析。生物医学脑肿瘤图像分割是当今世界活跃的研究人员具有标准化图像数据集的大量挑战性领域以及用于评估和比较现有分段算法的新算法的性能的各种度量。在最近的发展中,使用各种图像操纵工具和计算机硬件增强的快速增长解决了这些问题。图像分割是以三种方式完成的:(1)基于手动的(2)基于半自动的(3)全自动自动化。但仍然是脑肿瘤分割领域的研究,并准确鉴定肿瘤细胞。为了克服脑肿瘤分割的所有上述挑战和复杂性,需要了解图像的预处理,称为图像,图像中的偏差和非脑组织去除。在本文中,我们通过使用深度学习方法,提出了一种以显着有效的方式从受影响的脑形象中分割脑肿瘤的新方法。

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