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Segmentation based depth extraction for stereo image and video sequence.

机译:基于分割的立体图像和视频序列的深度提取。

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摘要

3D representation nowadays has attracted much more public attention than ever before. One of the most important techniques in this field is depth extraction.;In this thesis, we first introduce a well-known stereo matching method using color segmentation and belief propagation, and make an implementation of this framework. The color-segmentation based stereo matching method performs well recently, since this method can keep the object boundaries accurate, which is very important to depth map. Based on the implemented framework of segmentation based stereo matching, we proposed a color segmentation based 2D-to-3D video conversion method using high quality motion information.;In our proposed scheme, the original depth map is generated from motion parallax by optical flow calculation. After that we employ color segmentation and plane estimation to optimize the original depth map to get an improved depth map with sharp object boundaries. We also make some adjustments for optical flow calculation to improve its efficiency and accuracy. By using the motion vectors extracted from compressed video as initial values for optical flow calculation, the calculated motion vectors are more accurate within a shorter time compared with the same process without initial values.;The experimental results shows that our proposed method indeed gives much more accurate depth maps with high quality edge information. Optical flow with initial values provides good original depth map, and color segmentation with plane estimation further improves the depth map by sharpening its boundaries.
机译:如今,3D表示比以往任何时候都吸引了更多的公众关注。深度提取是该领域最重要的技术之一。本文首先介绍了一种众所周知的利用颜色分割和置信度传播的立体匹配方法,并实现了该框架。基于颜色分割的立体匹配方法最近表现良好,因为该方法可以保持对象边界的准确,这对于深度图非常重要。基于已实现的基于分割的立体匹配框架,我们提出了一种使用高质量运动信息的基于颜色分割的2D到3D视频转换方法。在我们提出的方案中,通过光流计算从运动视差生成了原始深度图。之后,我们使用颜色分割和平面估计来优化原始深度图,以获得具有清晰对象边界的改进深度图。我们还对光流计算进行了一些调整,以提高其效率和准确性。通过使用从压缩视频中提取的运动矢量作为光流计算的初始值,与没有初始值的相同过程相比,所计算的运动矢量在较短的时间内更加准确。实验结果表明,我们提出的方法的确提供了更多的功能具有高质量边缘信息的精确深度图。具有初始值的光流提供了良好的原始深度图,而具有平面估计的颜色分割通过锐化边界进一步改善了深度图。

著录项

  • 作者

    Zhang, Yu.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 M.A.Sc.
  • 年度 2012
  • 页码 88 p.
  • 总页数 88
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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