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Cramer-rao Bound for DOA Estimators under the Partial Relaxation Framework

机译:在部分松弛框架下,Cramer-Rao为DoA估算器绑定

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In this paper, the Cramer-Rao Bound for the Direction-ofArrival parameter under the partial relaxation framework is derived. We introduce a non-redundant parameterization of the signal model corresponding to the partial relaxation framework, in which the array structure in part of the steering matrix is neglected while the rank of the relaxed steering matrix is maintained. We prove that the stochastic Cramer-Rao Bound for the Direction-of-Arrival parameter under the partial relaxation signal model is lower-bounded by that of the conventional stochastic Cramer-Rao Bound. Furthermore, we prove that the partial relaxation estimator for the Weighted Subspace Fitting criterion asymptotically achieves the conventional Cramer-Rao Bound in the case of uncorrelated source signals.
机译:在本文中,推导出用于部分松弛框架下的载体方向参数的克拉梅 - Rao。我们引入了与部分松弛框架对应的信号模型的非冗余参数化,其中忽略了转向矩阵的一部分转向矩阵的阵列结构,同时保持松弛转向矩阵的等级。我们证明了在部分松弛信号模型下的到达方向参数的随机克拉姆 - RAO被传统的随机克拉姆 - RAO所界限较低。此外,我们证明了加权子空间拟合标准的部分松弛估计器渐近地实现了在不相关的源信号的情况下的传统Cramer-Rao。

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