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Fast and Provable Robust PCA VIA Normalized Coherence Pursuit

机译:通过归一化的连贯追求快速和可提供的强大的PCA

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The idea of Innovation Search, initially proposed for data clustering, was recently used for outlier detection where the directions of innovation were utilized to measure the innovation of the data points. We study the Innovation Values computed by the Innovation Search algorithm under a quadratic cost function and it is proved that Innovation Values with the new cost function are equivalent to Leverage Scores. This interesting connection is utilized to establish several theoretical guarantees for a Leverage Score based robust PCA method and to design a new robust PCA method. Numerical and theoretical studies indicate that while the presented approach is fast and closed-form, it outperforms most existing algorithms.
机译:最初提出用于数据聚类的创新搜索的想法,最近用于异常值检测,利用创新方向来衡量数据点的创新。 我们在二次成本函数下研究创新搜索算法计算的创新值,并证明了具有新成本函数的创新值相当于利用分数。 这种有趣的连接用于建立基于杠杆评分的鲁棒PCA方法的几种理论保证,并设计了一种新的鲁棒PCA方法。 数值和理论研究表明,虽然所提出的方法是快速和封闭形式的,但它优于现有的大多数现有算法。

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