更正:“从运动中减少结构:动态视觉的一般框架第2部分:实施和实验评估”

Stefano Soatto, P. Perona
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引用次数: 1

摘要

文献中已经提出了许多方法,利用动态模型从一系列图像中估计场景结构和自我运动。尽管所有方法都可以从统一框架内的“自然”动态模型中派生出来,但从工程的角度来看,根据应用程序和目标的不同,有许多权衡会导致不同的策略。我们想要描述和比较每个模型的属性,以便工程师可以选择最适合特定应用的模型。我们分析了在各种实验条件下由每个动态模型导出的滤波器的特性,评估了估计的准确性,它们对测量噪声的鲁棒性,对初始条件和视角的敏感性,浅地形模糊和遮挡的影响,对图像测量数量及其采样率的依赖。
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Correction to: "Reducing 'Structure From Motion': A General Framework for Dynamic Vision Part 2: Implementation and Experimental Assessment"
A number of methods have been proposed in the literature for estimating scene-structure and ego-motion from a sequence of images using dynamical models. Despite the fact that all methods may be derived from a “natural” dynamical model within a unified framework, from an engineering perspective there are a number of trade-offs that lead to different strategies depending upon the applications and the goals one is targeting. We want to characterize and compare the properties of each model such that the engineer may choose the one best suited to the specific application. We analyze the properties of filters derived from each dynamical model under a variety of experimental conditions, assess the accuracy of the estimates, their robustness to measurement noise, sensitivity to initial conditions and visual angle, effects of the bas-relief ambiguity and occlusions, dependence upon the number of image measurements and their sampling rate.
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