Estimation of Kullback-Leibler losses for noisy recovery problems within the exponential family

C. Deledalle
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引用次数: 11

Abstract

We address the question of estimating Kullback-Leibler losses rather than squared losses in recovery problems where the noise is distributed within the exponential family. Inspired by Stein unbiased risk estimator (SURE), we exhibit conditions under which these losses can be unbiasedly estimated or estimated with a controlled bias. Simulations on parameter selection problems in applications to image denoising and variable selection with Gamma and Poisson noises illustrate the interest of Kullback-Leibler losses and the proposed estimators.
指数族内噪声恢复问题的Kullback-Leibler损失估计
在噪声分布在指数族内的恢复问题中,我们解决了估计Kullback-Leibler损失而不是平方损失的问题。受Stein无偏风险估计器(SURE)的启发,我们展示了这些损失可以无偏估计或用控制偏差估计的条件。对伽玛和泊松噪声下图像去噪和变量选择应用中的参数选择问题进行了仿真,说明了对Kullback-Leibler损失和所提出的估计量的兴趣。
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