An optimal interpolation-based scheme for video summarization

N. Doulamis, A. Doulamis, K. Ntalianis
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引用次数: 11

Abstract

In this paper, an optimal and efficient algorithm for video summarization is proposed by exploiting temporal variations of video visual content. In particular, the most characteristic frames/shots (key-frames/shots) are extracted by estimating appropriate points on the feature vector curve, which represent in an optimal way the corresponding trajectory. This is performed by minimizing the approximation error of the feature vector curve and the respective curve formed by the estimated points using an interpolation scheme. A genetic algorithm is used for the minimization task, since the complexity of an exhaustive search is too large to be implemented. Furthermore, a fast technique for increasing the number of extracted key-frames/shots is presented.
基于插值的视频摘要优化方案
本文利用视频视觉内容的时间变化,提出了一种最优、高效的视频摘要算法。其中,通过在特征向量曲线上估计合适的点来提取最具特征的帧/镜头(关键帧/镜头),以最优的方式表示相应的轨迹。这是通过使用插值方案最小化特征向量曲线和由估计点形成的各自曲线的近似误差来实现的。遗传算法用于最小化任务,因为穷举搜索的复杂性太大而无法实现。此外,提出了一种快速增加提取关键帧/镜头数量的技术。
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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