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A Nonparametric Approach for Histogram Segmentation

机译:直方图分割的非参数方法

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In this work, we propose a method to segment a 1-D histogram without a priori assumptions about the underlying density function. Our approach considers a rigorous definition of an admissible segmentation, avoiding over and under segmentation problems. A fast algorithm leading to such a segmentation is proposed. The approach is tested both with synthetic and real data. An application to the segmentation of written documents is also presented. We shall see that this application requires the detection of very small histogram modes, which can be accurately detected with the proposed method
机译:在这项工作中,我们提出了一种对一维直方图进行细分的方法,而无需对基础密度函数进行先验假设。我们的方法考虑了对细分的严格定义,避免了细分问题。提出了导致这种分割的快速算法。该方法已通过综合数据和实际数据进行了测试。还提出了书面文件分割的申请。我们将看到,此应用程序需要检测非常小的直方图模式,可以使用提出的方法准确检测到

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