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Panoramic Video Stitching.

机译:全景视频拼接。

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摘要

Digital camera and smartphone technologies have made high quality images and video pervasive and abundant. Combining or stitching collections of images from a variety of viewpoints into an extended panoramic image is a common and popular function for such devices. Extending this functionality to video however, poses many new challenges due to the demand for both spatial and temporal continuity. Multi-view video stitching (also called panoramic video stitching) is an emerging, common research area in computer vision, image/video processing and computer graphics and has wide applications in virtual reality, virtual tourism, surveillance, and human computer interaction. In this thesis, I will explore the technical and practical problems in the complete process of stitching a high-resolution multi-view video into a high-resolution panoramic video. The challenges addressed include video stabilization, efficient multi-view video alignment and panoramic video stitching, color correction, and blurred frame detection and repair.;Specifically, I propose a continuity aware Kalman filtering scheme for rotation angles for video stabilization and jitter removal. For efficient stitching of long, high-resolution panoramic videos, I propose constrained and multi-grid SIFT matching schemes, concatenated image projection and warping and min-space feathering. These three approaches together can greatly reduce the computational time and memory requirement in panoramic video stitching, which makes it feasible to stitch high-resolution (e.g., 1920x1080 pixels) and long panoramic video sequences using standard workstations.;Color correction is the emphasis of my research. On this topic I first performed a systematic survey and performance evaluation of nine state of the art color correction approaches in the context of two-view image stitching. My evaluation work not only gives useful insights and conclusions about the relative performance of these approaches, but also points out the remaining challenges and possible directions for future color correction research. Based on the conclusions from this evaluation work, I proposed a hybrid and scalable color correction approach for general n-view image stitching, and designed a two-view video color correction approach for panoramic video stitching.;For blurred frame detection and repair, I have completed preliminary work on image partial blur detection and classification, in which I proposed a SVM-based blur block classifier using improved and new local blur features. Then, based on partial blur classification results, I designed a statistical thresholding scheme for blurred frame identification. For the detected blurred frames, I repaired them using polynomial data fitting from neighboring unblurred frames.;Many of the techniques and ideas in this thesis are novel and general solutions to the technical or practical problems in panoramic video stitching. At the end of this thesis, I conclude the contributions made by this thesis to the research and popularization of panoramic video stitching, and describe those open research issues.
机译:数码相机和智能手机技术已经使高质量的图像和视频无处不在。将来自各种视点的图像集合组合或缝合为扩展的全景图像是此类设备的常见功能。然而,由于对空间和时间连续性的需求,将该功能扩展到视频带来了许多新的挑战。多视图视频拼接(也称为全景视频拼接)是计算机视觉,图像/视频处理和计算机图形学中一个新兴的常见研究领域,在虚拟现实,虚拟旅游,监视和人机交互中具有广泛的应用。在本文中,我将探讨将高分辨率多视图视频拼接为高分辨率全景视频的完整过程中的技术和实践问题。解决的挑战包括视频稳定,有效的多视图视频对齐和全景视频拼接,色彩校正以及模糊帧检测和修复。具体来说,我提出了一种用于旋转角度的具有连续性的卡尔曼滤波方案,以实现视频稳定和抖动消除。为了有效地拼接长的高分辨率全景视频,我提出了约束和多网格SIFT匹配方案,串联图像投影以及变形和最小空间羽化。这三种方法在一起可以大大减少全景视频拼接的计算时间和内存需求,这使得使用标准工作站拼接高分辨率(例如1920x1080像素)和较长的全景视频序列变得可行。研究。在这个主题上,我首先对两视图图像拼接的情况下的九种最先进的色彩校正方法进行了系统的调查和性能评估。我的评估工作不仅对这些方法的相对性能提供了有用的见解和结论,而且还指出了未来色彩校正研究的剩余挑战和可能的方向。基于评估工作的结论,我提出了一种混合的可伸缩的色彩校正方法,用于一般的n视图图像拼接,并设计了一种用于全景视频拼接的两视图视频色彩校正方法。已经完成了图像局部模糊检测和分类的初步工作,其中我提出了一种基于SVM的模糊块分类器,该分类器使用了改进的新局部模糊特征。然后,根据部分模糊分类结果,设计了统计阈值方案用于模糊帧识别。对于检测到的模糊帧,我使用了来自相邻未模糊帧的多项式数据拟合对它们进行了修复。;本文中的许多技术和思想都是针对全景视频拼接中技术或实际问题的新颖而通用的解决方案。最后,总结了本论文对全景视频拼接的研究和推广所做的贡献,并描述了这些开放性研究问题。

著录项

  • 作者

    Xu, Wei.;

  • 作者单位

    University of Colorado at Boulder.;

  • 授予单位 University of Colorado at Boulder.;
  • 学科 Computer Science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:43:13

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