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Optimal brightness functions for optical flow estimation of deformable motion

机译:最佳亮度函数,用于估算可变形运动的光流

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Estimation accuracy of Horn and Schunck's (1981) classical optical flow algorithm depends on many factors including the brightness pattern of the measured images. Since some applications can select brightness functions with which to "paint" the object, it is desirable to know what patterns will lead to the best motion estimates. The paper presents a method for determining this pattern a priori using mild assumptions about the velocity field and imaging process. The method is based on formulating Horn and Schunck's algorithm as a linear smoother and rigorously deriving an expression for the corresponding error covariance function. The authors then specify a scalar performance measure and develop an approach to select an optimal brightness function which minimizes this performance measure from within a parametrized class. Conditions for existence of an optimal brightness function are also given. The resulting optimal performance is demonstrated using simulations, and a discussion of these results and potential future research is given.
机译:Horn and Schunck(1981)的经典光流算法的估计精度取决于许多因素,包括被测图像的亮度模式。由于某些应用程序可以选择“绘制”对象所用的亮度函数,因此希望知道哪种模式会导致最佳运动估计。本文提出了一种使用关于速度场和成像过程的温和假设先验确定此模式的方法。该方法基于将Horn和Schunck算法公式化为线性平滑器,并严格推导相应误差协方差函数的表达式。然后,作者指定一个标量性能指标,并开发一种方法来选择最佳亮度函数,以从参数化类中最小化此性能指标。还给出了存在最佳亮度函数的条件。通过仿真证明了所产生的最佳性能,并讨论了这些结果和潜在的未来研究。

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