Generalized Boundary Detection Using Compression-based Analytics

Christina L. Ting, R. Field, T. Quach, Travis L. Bauer
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引用次数: 2

Abstract

We present a new method for boundary detection within sequential data using compression-based analytics. Our approach is to approximate the information distance between two adjacent sliding windows within the sequence. Large values in the distance metric are indicative of boundary locations. A new algorithm is developed, referred to as sliding information distance (SLID), that provides a fast, accurate, and robust approximation to the normalized information distance. A modified smoothed z-score algorithm is used to locate peaks in the distance metric, indicating boundary locations. A variety of data sources are considered, including text and audio, to demonstrate the efficacy of our approach.
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基于压缩分析的广义边界检测
我们提出了一种基于压缩分析的序列数据边界检测新方法。我们的方法是近似序列中两个相邻滑动窗口之间的信息距离。距离度量中的大值表示边界位置。提出了一种新的算法,称为滑动信息距离(slide),它提供了一种快速、准确和鲁棒的归一化信息距离近似值。一种改进的平滑z-score算法用于定位距离度量中的峰值,指示边界位置。考虑了各种数据源,包括文本和音频,以证明我们的方法的有效性。
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