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Detecting Neurodegenerative Disease from MRI: A Brief Review on a Deep Learning Perspective

机译:从MRI检测神经变性疾病:关于深度学习视角的简要审查

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Rapid development of high speed computing devices and infrastructure along with improved understanding of deep machine learning techniques during the last decade have opened up possibilities for advanced analysis of neuroimaging data. Using those computing tools Neuroscientists now can identify Neurodegenerative diseases from neuroimaging data. Due to the similarities in disease phenotypes, accurate detection of such disorders from neuroimaging data is very challenging. In this article, we have reviewed the methodological research papers proposing to detect neurodegenerative diseases using deep machine learning techniques only from MRI data. The results show that deep learning based techniques can detect the level of disorder with relatively high accuracy. Towards the end, current challenges are reviewed and some possible future research directions are provided.
机译:高速计算设备和基础设施的快速发展随着对过去十年的深层机器学习技术的了解,对神经影像数据的高级分析的可能性开辟了可能性。使用这些计算工具现在可以识别来自神经影像数据的神经变性疾病。由于疾病表型的相似性,精确地检测来自神经影像数据的这种疾病是非常具有挑战性的。在本文中,我们审查了使用深层机器学习技术仅从MRI数据中使用深层机器学习技术检测神经翻入疾病的方法学研究论文。结果表明,基于深度的学习技术可以检测相对高精度的疾病水平。迄今为止,审查了当前的挑战,提供了一些可能的未来研究方向。

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