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On Data and Parameter Estimation Using the Variational Bayesian EM-algorithm for Block-fading Frequency-selective MIMO Channels

机译:基于变分贝叶斯Em算法的块衰落频选mImO信道数据和参数估计

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摘要

A general Variational Bayesian framework for iterative data and parameter estimation for coherent detection is introduced as a generalization of the EM-algorithm. Explicit solutions are given for MIMO channel estimation with Gaussian prior and noise covariance estimation with inverse-Wishart prior. Simulation of a GSM-like system provides empirical proof that the VBEM-algorithm is able to provide better performance than the EM-algorithm. However, if the posterior distribution is highly peaked, the VBEM-algorithm approaches the EM-algorithm and the gain disappears. The potential gain is therefore greatest in systems with a small amount of observations compared to the number of parameters to be estimated.
机译:介绍了一种通用的变分贝叶斯框架,用于迭代数据和相干检测的参数估计,作为EM算法的推广。给出了针对具有高斯先验的MIMO信道估计和具有逆Wishart先验的噪声协方差估计的显式解决方案。类似GSM系统的仿真提供了经验证明,即VBEM算法能够提供比EM算法更好的性能。但是,如果后验分布高度达到峰值,则VBEM算法接近EM算法,并且增益消失。因此,与要估计的参数数量相比,在少量观察的系统中,潜在增益最大。

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