统计视觉运动估计模型

Spetsakis M.
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引用次数: 18

摘要

从理论上和实验上推导了几种基于视觉输入的运动统计估计模型,并进行了分析。我们研究了各种各样的模型,使用最小二乘法和使用最大似然的模型,具有几种不同的假设(依赖和独立噪声,各向同性和非各向同性噪声),球形和平面图像表面,以及不同的预处理(一种基于对应,一种基于视差)。我们只使用统计估计中的几个基本概念来进行所有这些分析,因此所有方法的相对优点和缺点变得明显。实验结果为这些优点提供了一个定量的度量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Models of Statistical Visual Motion Estimation

Several models of statistical estimation of motion from visual input are derived and analyzed theoretically and experimentally. We study a wide variety of models, ones that use least squares and ones that use maximum likelihood, with several different assumptions (dependent and independent noise, isotropic and non-isotropic noise), spherical and planar image surfaces, and different preprocessing (one based on correspondence and one based on disparity). We do all this analysis using only a few fundamental concepts from statistical estimation, so the relative merits and shortcomings of all the methods become evident. The experimental results provide a quantitative measure of these merits.

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