使用视频超团模式和频谱分析进行场景分析的不相关帧去除

Yuchou Chang, Hong Lin
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引用次数: 0

摘要

视频通常包括与录制场景无关的帧。这主要是由于不完美的拍摄,突然移动的相机,或无意切换场景。在对视频场景进行语义分析并进行视频检索之前,需要去除不相关的帧。提出了一种自动去除无关帧的无监督方法。为了更好地描述视频内容的全局结构,测量视频帧的相似性,提出了一种基于斐波那契格量化的彩色视频帧对数谱表示方法。将文本分析中用于检测冗余数据的超团模式分析扩展到彩色视频中相关帧簇的提取。提出了一种利用k近邻算法生成视频帧支持度测度和h置信度测度的新策略。对提出的不相关视频帧去除算法的评估显示了具有不相关帧的数据集的有希望的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Irrelevant frame removal for scene analysis using video hyperclique pattern and spectrum analysis
Video often include frames that are irrelevant to the scenes for recording. These are mainly due to imperfect shooting, abrupt movements of camera, or unintended switching of scenes. The irrelevant frames should be removed before the semantic analysis of video scene is performed for video retrieval. An unsupervised approach for automatic removal of irrelevant frames is proposed in this paper. A novel log-spectral representation of color video frames based on Fibonacci lattice-quantization has been developed for better description of the global structures of video contents to measure similarity of video frames. Hyperclique pattern analysis, used to detect redundant data in textual analysis, is extended to extract relevant frame clusters in color videos. A new strategy using the k-nearest neighbor algorithm is developed for generating a video frame support measure and an h-confidence measure on this hyperclique pattern based analysis method. Evaluation of the proposed irrelevant video frame removal algorithm reveals promising results for datasets with irrelevant frames.
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