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Nonuniform image motion estimation using Kalman filtering

机译:使用卡尔曼滤波的非均匀图像运动估计

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This correspondence presents a new pixel-recursive algorithm for estimating the nonuniform image motion from noisy measurements. The proposed method is performed in two steps. First, the pixels are examined to identify the (detectable) moving pixels, using a binary hypothesis testing. Then, characterizing the motion of the identified moving pixels in terms of a unitary transformation, the motion coefficients are estimated using a Kalman filter. Because the motion vector is typically (spatially) slowly varying, the size of the motion coefficient vector is significantly reduced. Consequently, the proposed Kalman filter need only search for the truncated coefficients of the motion field. The proposed method is simulated on a computer, and results are compared with the algorithm reported by Netravali and Robbins (see Bell Syst. Tech. J. vol.58, no.3, p.631-70, Mar. 1979).
机译:这种对应关系提出了一种新的像素递归算法,用于根据噪声测量值估算不均匀的图像运动。所提出的方法分两个步骤执行。首先,使用二进制假设检验对像素进行检查以识别(可检测的)运动像素。然后,根据unit变换来表征所识别的运动像素的运动,使用卡尔曼滤波器来估计运动系数。因为运动矢量通常(在空间上)缓慢变化,所以运动系数矢量的大小显着减小。因此,提出的卡尔曼滤波器仅需要搜索运动场的截断系数。在计算机上对提出的方法进行了仿真,并将结果与​​Netravali和Robbins报告的算法进行了比较(请参见1979年3月,Bell Syst。Tech。J. vol。58,第3期,第631-70页)。

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