首页> 外文会议>International conference on medical imaging computing and computer-assisted intervention >Joint Diagnosis and Conversion Time Prediction of Progressive Mild Cognitive Impairment (pMCI) Using Low-Rank Subspace Clustering and Matrix Completion
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Joint Diagnosis and Conversion Time Prediction of Progressive Mild Cognitive Impairment (pMCI) Using Low-Rank Subspace Clustering and Matrix Completion

机译:使用低秩子空间聚类和矩阵完成的渐进性轻度认知障碍(pMCI)联合诊断和转换时间预测

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Identifying progressive mild cognitive impairment (pMCI) patients and predicting when they will convert to Alzheimer's disease (AD) are important for early medical intervention. Multi-modality and longitudinal data provide a great amount of information for improving diagnosis and prognosis. But these data are often incomplete and noisy. To improve the utility of these data for prediction purposes, we propose an approach to denoise the data, impute missing values, and cluster the data into low-dimensional subspaces for pMCI prediction. We assume that the data reside in a space formed by a union of several low-dimensional subspaces and that similar MCI conditions reside in similar sub-spaces. Therefore, we first use incomplete low-rank representation (ILRR) and spectral clustering to cluster the data according to their representative low-rank subspaces. At the same time, we denoise the data and impute missing values. Then we utilize a low-rank matrix completion (LRMC) framework to identify pMCI patients and their time of conversion. Evaluations using the ADNI dataset indicate that our method outperforms conventional LRMC method.
机译:识别进行性轻度认知障碍(pMCI)患者并预测何时将转化为阿尔茨海默氏病(AD)对于早期医学干预很重要。多模态和纵向数据为改善诊断和预后提供了大量信息。但是这些数据通常不完整且嘈杂。为了提高这些数据用于预测的效用,我们提出了一种对数据进行去噪,估算缺失值并将数据聚类到用于pMCI预测的低维子空间中的方法。我们假设数据驻留在由几个低维子空间的并集形成的空间中,并且类似的MCI条件也驻留在类似的子空间中。因此,我们首先使用不完整的低秩表示(ILRR)和频谱聚类根据其代表的低秩子空间对数据进行聚类。同时,我们对数据进行去噪并估算缺失值。然后,我们利用低秩矩阵完成(LRMC)框架来识别pMCI患者及其转化时间。使用ADNI数据集进行的评估表明,我们的方法优于传统的LRMC方法。

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