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An MSE-tunable linear estimator with conditional dominance over least-squares estimation

机译:具有条件优势的最小二乘估计的MSE可调线性估计

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In the paper, we propose a conditionally biased linear estimator to estimate a deterministic vector h subjected to a linear transformation M and corrupted by zero-mean additive white Gaussian noise, w. We begin by drawing inspiration from the rank shaping idea of the Rank Shaped Least Squares (RSLS) estimator. We then incorporate the estimator into the Covariance Shaping Least Squares (CSLS) framework, which results in inheritance of attractive properties, such as achieving the Cramer-Rao Lower Bound for biased estimators (B-CRLB) and conditional dominance over the Least Squares Estimator (LSE). We further introduce a bias control parameter that not only allows elegant control of the trade-off between the bias and the MSE floor, but also helps in elucidating the common framework that binds the proposed estimator, RSLS, CSLS and LS estimators. We conclude by applying the proposed estimator for pilot-aided channel estimation in OFDM systems.
机译:在本文中,我们提出了一个条件偏差线性估计器,以估计确定性向量h,该向量经历了线性变换M并被零均值加性高斯白噪声w破坏。我们首先从等级成形最小二乘(RSLS)估计器的等级成形思想中汲取灵感。然后,我们将估算器合并到协方差整形最小二乘(CSLS)框架中,该框架导致具有吸引力的属性的继承,例如实现偏倚估算器的Cramer-Rao下界(B-CRLB)和对最小二乘估算器( LSE)。我们进一步介绍了一种偏差控制参数,该参数不仅可以优雅地控制偏差和MSE底限之间的折衷,而且还有助于阐明将建议的估算器,RSLS,CSLS和LS估算器绑定在一起的通用框架。我们通过将所提出的估计器应用于OFDM系统中的导频辅助信道估计来得出结论。

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