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Combined key-frame extraction and object-based video segmentation

机译:结合了关键帧提取和基于对象的视频分割

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摘要

Video segmentation has been an important and challenging issue for many video applications. Usually there are two different video segmentation approaches, i.e., shot-based segmentation that uses a set of key-frames to represent a video shot and object-based segmentation that partitions a video shot into objects and background. Representing a video shot at different semantic levels, two segmentation processes are usually implemented separately or independently for video analysis. In this paper, we propose a new approach to combine two video segmentation techniques together. Specifically, a combined key-frame extraction and object-based segmentation method is developed based state-of-the-art video segmentation algorithms and statistical clustering approaches. On the one hand, shot-based segmentation can dramatically facilitate and enhance object-based segmentation by using key-frame extraction to select a few key-frames for statistical model training. On the other hand, object-based segmentation can be used to improve shot-based segmentation results by using model-based key-frame refinement. The proposed approach is able to integrate advantages of these two segmentation methods and provide a new combined shot-based and object-based framework for a variety of advanced video analysis tasks. Experimental results validate effectiveness and flexibility of the proposed video segmentation algorithm.
机译:对于许多视频应用来说,视频分割一直是一个重要且具有挑战性的问题。通常,有两种不同的视频分割方法,即基于镜头的分割(使用一组关键帧表示视频镜头)和基于对象的分割(将视频镜头分为对象和背景)。代表不同语义级别的视频镜头,通常对视频分析分别或独立实现两个分段过程。在本文中,我们提出了一种将两种视频分割技术结合在一起的新方法。具体而言,基于最新的视频分割算法和统计聚类方法,开发了一种结合了关键帧提取和基于对象的分割方法。一方面,基于镜头的分割可以通过使用关键帧提取选择一些关键帧进行统计模型训练,从而极大地促进和增强基于对象的分割。另一方面,基于对象的细分可用于通过使用基于模型的关键帧优化来改善基于镜头的细分结果。所提出的方法能够整合这两种分割方法的优点,并为各种高级视频分析任务提供基于镜头和对象的新组合框架。实验结果验证了所提视频分割算法的有效性和灵活性。

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