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Developement of a Neurological Disease Prediction Framework for Assisting Neurologits to Automatically Segment Gray and White Matter Regions in Brain MRI Images of Patients

机译:开发神经疾病预测框架,以帮助神经科医生自动分割患者脑部MRI图像中的灰色和白色区域

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There is a need for computational tools for processing medical patient data and extracting clinically relevant information from patient images for providing patient-specific personalized treatment. Tools have been and are actively being developed by software engineers and programmers in the field of bio-medical image processing for assisting doctors, scientists and researchers. This paper presents an independent stand-alone software application that is a graphical computational tool with a user interface for automatic segmentation of brain MRI images. The same software tool subsequently functions as a neurological disease prediction framework for detection of disease, dementia, impairment, injury, lesions, or tumors in brain MRI images. Brain MRI image segmentation techniques have become an important tool for neurologists to detect disease and cure patients in their early stages of the disease so detected. The tool presented in this paper facilitates the user to automatically segment the regions of brain MRI images using an algorithm called adapted fuzzy c-means (FCM). This methodology for segmentation is based on pixel classification technique, in conjunction with connected region analysis.
机译:需要用于处理医疗患者数据并从患者图像提取临床相关信息以提供患者特定的个性化治疗的计算工具。在生物医学图像处理领域,软件工程师和程序员已经并且正在积极开发工具,以帮助医生,科学家和研究人员。本文介绍了一个独立的独立软件应用程序,该应用程序是带有用户界面的图形计算工具,用于大脑MRI图像的自动分割。相同的软件工具随后用作神经疾病预测框架,用于检测脑MRI图像中的疾病,痴呆,损伤,损伤,损伤或肿瘤。脑部MRI图像分割技术已成为神经学家发现疾病并治愈如此早期发现的患者的重要工具。本文介绍的工具可帮助用户使用一种称为自适应模糊c均值(FCM)的算法自动分割大脑MRI图像的区域。这种分割方法基于像素分类技术,并结合了相关区域分析。

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