Graph Partition Based Scene Boundary Detection

U. Sakarya, Z. Telatar
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引用次数: 11

Abstract

In this paper a graph partition based scene boundary detection method is proposed. Multiple features extracted from the video are considered for the determination of the scene boundaries in an unsupervised clustering procedure. For each video shot to shot comparison feature, one-dimensional signal is constructed by graph partitions obtained from the similarity matrix in a temporal interval. After each one-dimensional signal is filtered, k-means clustering is conducted for finding scene boundaries. The proposed graph-based scene boundary detection method is evaluated and compared with the graph-based scene detection method presented in literature.
基于图分割的场景边界检测
本文提出了一种基于图分割的场景边界检测方法。在无监督聚类过程中,考虑从视频中提取的多个特征来确定场景边界。对于每个视频镜头间的比较特征,通过在一个时间间隔内从相似矩阵中得到的图分区来构建一维信号。对每个一维信号进行滤波后,进行k-means聚类,寻找场景边界。对本文提出的基于图的场景边界检测方法进行了评价,并与已有的基于图的场景检测方法进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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