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Algorithm-based efficient approaches for motion estimation systems.

机译:运动估计系统的基于算法的有效方法。

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摘要

This research addresses algorithms for efficient motion estimation systems. With the growth of wireless video system market, such as mobile imaging, digital still and video cameras, and video sensor network, low-power consumption is increasingly desirable for embedded video systems. Motion estimation typically needs considerable computations and is the basic block for many video applications. To implement low-power video systems using embedded devices and sensors, a CMOS imager has been developed that allows lowpower computations on the focal plane. In this dissertation efficient motion estimation algorithms are presented to complement this platform.; In the first part of dissertation we propose two algorithms regarding gradient-based optical flow estimation (OFE) to reduce computational complexity with high performance. The first is a checkerboard-type filtering (CBTF) algorithm for prefiltering and spatiotemporal derivative calculations. Another one is spatially recursive OFE frameworks using recursive LS (RLS) and/or matrix refinement to reduce the computational complexity for solving linear system of derivative values of image intensity in least-squares (LS)-OFE. From simulation results, CBTF and spatially recursive OFE show improved computational efficiency compared to conventional approaches with higher or similar performance.; In the second part of dissertation we propose a new algorithm for video coding application to improve motion estimation and compensation performance in the wavelet domain. This new algorithm is for wavelet-based multi-resolution motion estimation (MRME) using temporal aliasing detection (TAD) to enhance rate-distortion (RD) performance under temporal aliasing noise. This technique gives competitive or better performance in terms of RD compared to conventional MRME and MRME with motion vector prediction through median filtering.
机译:这项研究致力于有效运动估计系统的算法。随着无线视频系统市场(例如移动成像,数码相机和摄像机以及视频传感器网络)的增长,对于嵌入式视频系统,越来越需要低功耗。运动估计通常需要大量的计算,并且是许多视频应用程序的基本模块。为了使用嵌入式设备和传感器来实现低功耗视频系统,已经开发了允许在焦平面上进行低功耗计算的CMOS成像器。在本文中,提出了有效的运动估计算法以补充该平台。在论文的第一部分,我们提出了两种关于基于梯度的光流估计(OFE)的算法,以降低高性能的计算复杂度。第一种是用于预过滤和时空导数计算的棋盘格类型过滤(CBTF)算法。另一个是使用递归LS(RLS)和/或矩阵优化来减少用于计算最小二乘(LS)-OFE图像强度微分值线性系统的计算复杂度的空间递归OFE框架。从仿真结果来看,与性能更高或相似的传统方法相比,CBTF和空间递归的OFE表现出更高的计算效率。在论文的第二部分,我们提出了一种新的视频编码算法,以提高小波域的运动估计和补偿性能。此新算法用于基于小波的多分辨率运动估计(MRME),其中使用时间混叠检测(TAD)来增强时间混叠噪声下的速率失真(RD)性能。与常规MRME和通过中值滤波进行运动矢量预测的MRME相比,该技术在RD方面具有竞争性或更好的性能。

著录项

  • 作者

    Lee, Teahyung.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.; Computer Science.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 132 p.
  • 总页数 132
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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