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A Video Content Independent Mining Algorithm for Evolved Rule-based Detection of Scene Boundaries

机译:一种基于视频内容的基于规则规则的场景边界检测的独立挖掘算法

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摘要

Segmentation of video data stream aims to divide the stream into temporally shorter, meaningful and manageable segments. This is the first step towards content-based multimedia database management, contented-based retrieval and browsing, and is very important to many other applications that aim to work with content. This paper presents a novel video mining algorithm that uses genetic programming for evolved rule-based scene boundary detection and whose key advantage is that is video content independent. Hence, the algorithm can be applied without modification to different video sequences just by feeding it different training data.
机译:视频数据流的分段旨在将流分成时间上更短,有意义和可管理的段。这是迈向基于内容的多媒体数据库管理,基于内容的检索和浏览的第一步,并且对于旨在处理内容的许多其他应用程序非常重要。本文提出了一种新颖的视频挖掘算法,该算法使用遗传编程进行基于规则的演化场景边界检测,其主要优势在于视频内容无关。因此,仅通过向算法提供不同的训练数据就可以在不修改算法的情况下将其应用于不同的视频序列。

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