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A computer vision approach to diagnose Parkinson Disease using Brain CT Images

机译:使用脑部CT图像诊断帕金森病的计算机视觉方法

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摘要

Parkinson disease is a disease that affects the central nervous system and creates a degenerative disorder of the central nervous system. Motor system is affected due to disorder in central nervous system of the brain. The clinical diagnosis of the Parkinson disease result in excess medical cost, errors and does not provide correct detection. The symptoms of the disease are slowness, rigidity, shaking and difficult in walking. By analyzing the current condition of the brain dopamine nerve terminal, one can successfully predict the odds of being affected by this deadly disease. The proposed methodology to detect the Parkinson disease utilizes a special algorithm for image processing of brain CT images. The part of the brain that is affected from Parkinson disease is differentiated from the non Parkinson disease affected part of the brain. The proposed algorithm is robust, gender and age independent. It automatically predicts whether or not a person has Parkinson disease by taking a real time input from the user.
机译:帕金森氏病是一种影响中枢神经系统并造成中枢神经系统退行性疾病的疾病。运动系统由于大脑中枢神经系统的紊乱而受到影响。帕金森氏病的临床诊断会导致医疗费用过高,出错,并且无法提供正确的检测结果。该疾病的症状是缓慢,僵硬,摇晃且难以行走。通过分析大脑多巴胺神经末梢的当前状况,可以成功预测受到这种致命疾病影响的几率。提出的检测帕金森氏病的方法采用了一种特殊的算法来处理脑部CT图像。受帕金森氏病影响的大脑部分与未受帕金森氏病影响的大脑部分是有区别的。所提出的算法是鲁棒的,性别和年龄无关。通过获取用户的实时输入,它可以自动预测一个人是否患有帕金森氏病。

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