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Parameter Estimation of Signal-Dependent Random Noise in CMOS/CCD Image Sensor Based on Numerical Characteristic of Mixed Poisson Noise Samples

机译:基于混合泊松噪声样本数值特征的CMOS / CCD图像传感器中信号相关随机噪声的参数估计

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摘要

Parameter estimation of Poisson-Gaussian signal-dependent random noise in the complementary metal-oxide semiconductor/charge-coupled device image sensor is a significant step in eliminating noise. The existing estimation algorithms, which are based on finding homogeneous regions, acquire the pair of the variances of noise and the intensities of every homogeneous region to fit the linear or piecewise linear curve and ascertain the noise parameters accordingly. In contrast to the existing algorithms, in this study, the Poisson noise samples of all homogeneous regions in every block image are pieced together to constitute a larger sample following the mixed Poisson noise distribution; then, the mean and variance of the mixed Poisson noise sample are deduced. Next, the mapping function among the noise parameters to be estimated—variance of Poisson-Gaussian noise and that of Gaussian noise corresponding to the stitched region in every block image—is constructed. Finally, the unbiased estimations of noise parameters are calculated from the mapping functions of all the image blocks. The experimental results confirm that the proposed method can obtain lower mean absolute error values of estimated noise parameters than the conventional ones.
机译:互补金属氧化物半导体/电荷耦合器件图像传感器中泊松-高斯信号相关随机噪声的参数估计是消除噪声的重要一步。现有的基于发现均匀区域的估计算法,获取噪声的方差和每个均匀区域的强度对,以拟合线性或分段线性曲线,并相应地确定噪声参数。与现有算法相比,本研究将每个块图像中所有均匀区域的泊松噪声样本拼凑在一起,以构成混合泊松噪声分布后的较大样本;然后,推导混合泊松噪声样本的均值和方差。接下来,构造要估计的噪声参数之间的映射函数,即每个块图像中的泊松-高斯噪声的方差和与缝合区域相对应的高斯噪声的方差。最后,从所有图像块的映射函数计算出噪声参数的无偏估计。实验结果证明,该方法可以获得比传统方法更低的估计噪声参数平均绝对误差值。

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