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Review of MRI-based Brain Tumor Image Segmentation Using Deep Learning Methods

机译:深度学习方法基于MRI的脑肿瘤图像分割技术综述

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Brain tumor segmentation is an important task in medical image processing. Early diagnosis of brain tumors plays an important role in improving treatment possibilities and increases the survival rate of the patients. Manual segmentation of the brain tumors for cancer diagnosis, from large amount of MRI images generated in clinical routine, is a difficult and time consuming task. There is a need for automatic brain tumor image segmentation. The purpose of this paper is to provide a review of MRI-based brain tumor segmentation methods. Recently, automatic segmentation using deep learning methods proved popular since these methods achieve the state-of-the-art results and can address this problem better than other methods. Deep learning methods can also enable efficient processing and objective evaluation of the large amounts of MRI-based image data. There are number of existing review papers, focusing on traditional methods for MRI-based brain tumor image segmentation. Different than others, in this paper, we focus on the recent trend of deep learning methods in this field. First, an introduction to brain tumors and methods for brain tumor segmentation is given. Then, the state-of-the-art algorithms with a focus on recent trend of deep learning methods are discussed. Finally, an assessment of the current state is presented and future developments to standardize MRI-based brain tumor segmentation methods into daily clinical routine are addressed.
机译:脑肿瘤分割是医学图像处理中的重要任务。脑肿瘤的早期诊断在改善治疗可能性和提高患者存活率中起重要作用。从临床常规中生成的大量MRI图像中手动分割脑肿瘤以进行癌症诊断是一项艰巨且耗时的任务。需要自动脑肿瘤图像分割。本文的目的是对基于MRI的脑肿瘤分割方法进行综述。最近,使用深度学习方法进行自动分割被证明很受欢迎,因为这些方法达到了最新的结果,并且比其他方法可以更好地解决此问题。深度学习方法还可以对大量基于MRI的图像数据进行有效处理和客观评估。现有许多评论文章,重点介绍基于MRI的脑肿瘤图像分割的传统方法。与其他人不同,本文重点关注该领域深度学习方法的最新趋势。首先,介绍了脑肿瘤和脑肿瘤分割方法。然后,重点讨论了深度学习方法的最新趋势的最新算法。最后,提出了对当前状态的评估,并探讨了将基于MRI的脑肿瘤分割方法标准化为日常临床工作的未来发展。

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