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Unbiased and biased estimators in coded aperture imaging for far field standoff detection at low count rates

机译:编码孔径成像中的无偏和有偏估计量,用于低计数率的远场隔离检测

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In general, the reconstructed image in coded aperture imaging is affected by the source configuration. Fenimore's balanced convolution method in conjunction with the uniformly redundant array can remove the interference due to the source configuration. As an extension of Fenimore's balanced convolution method, we present general conditions for designing an unbiased mean estimator for a far-field coded aperture imaging system with a random binary mask. As part of the general conditions, we propose decoding arrays whose elements are variable with respect to source directions. We also show that the unbiased mean estimator from Fenimore's balanced convolution method is a special case of the general conditions. We also present a practical example of designing restoring arrays for a coded aperture system with a random mask.
机译:通常,编码孔径成像中的重建图像受光源配置的影响。 Fenimore的平衡卷积方法与均匀冗余阵列相结合,可以消除源配置带来的干扰。作为Fenimore平衡卷积方法的扩展,我们介绍了为带有随机二进制掩码的远场编码孔径成像系统设计无偏均值估计器的一般条件。作为一般条件的一部分,我们建议解码其元素相对于源方向可变的数组。我们还表明,费尼莫尔平衡卷积方法的无偏均值估计是一般条件的特例。我们还提供了一个实际示例,为带有随机掩模的编码孔径系统设计恢复阵列。

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