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Improving accuracy and robustness of self-tuning histograms by subspace clustering

机译:通过子空间聚类提高自调整直方图的准确性和鲁棒性

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摘要

We show both formally and by means of experiments that self-tuning histograms suffer from three major problems - sensitivity to learning, stagnation, and dimensionality. We also describe our solution to the problem - which is histogram initialization with subspace clustering.
机译:我们在形式上和通过实验均表明,自调整直方图存在三个主要问题-学习敏感性,停滞性和维数。我们还描述了该问题的解决方案-带有子空间聚类的直方图初始化。

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