基于深度和运动信息的视频对象空间分割

Jaime S. Cardoso, Jorge S. Cardoso, L. Côrte-Real
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引用次数: 9

摘要

视频空间自动分割是一个目前还没有通用解决方案的问题。大多数困难来自于捕获图像的过程,这些图像仍然是它们所代表的场景的非常有限的样本。以深度数据的形式捕获额外的信息,是解决这个问题的一个步骤。我们首先研究深度数据用于更好的图像分割;提出了一种新的分割框架,主要利用深度来指导颜色信息的分割算法。然后,我们扩展了该方法,在分割过程中也加入了运动信息。在一组选定的图像序列上证明了所提出方法的有效性和简单性。实现的质量提高了对依赖空间视频分割作为预处理的操作的显著改进的期望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Object-Based Spatial Segmentation of Video Guided by Depth and Motion Information
Automatic spatial video segmentation is a problem without a general solution at the current state-of-the-art. Most of the difficulties arise from the process of capturing images, which remain a very limited sample of the scene they represent. The capture of additional information, in the form of depth data, is a step forward to address this problem. We start by investigating the use of depth data for better image segmentation; a novel segmentation framework is proposed, with depth being mainly used to guide a segmentation algorithm on the colour information. Then, we extend the method to also incorporate motion information in the segmentation process. The effectiveness and simplicity of the proposed method is documented with results on a selected set of images sequences. The achieved quality raises the expectation for a significant improvement on operations relying on spatial video segmentation as a pre-process.
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