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DOA and steering vector estimation using a partially calibrated array

机译:使用部分校准的阵列进行DOA和转向矢量估计

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摘要

We consider the problem of estimating directions of arrival (DOAs) using an array of sensors, where some of the sensors are perfectly calibrated, while others are uncalibrated. We identify a cost function whose minimizer is a statistically consistent and efficient estimator of the unknown parameters-the DOAs and the gains and phases of the uncalibrated sensors. Next we present an iterative algorithm for finding the minimum of that cost function The proposed algorithm is guaranteed to converge. The performance of the estimation algorithm is compared with the Cramer Rao bound (CRB). The derivation of the bound is also included. It is shown that DOA accuracy can be improved by adding uncalibrated sensors to a precisely calibrated array. Moreover, the number of sources that can be resolved may be larger than the number that can be resolved by the calibrated portion of the array.
机译:我们考虑使用传感器阵列来估计到达方向(DOA)的问题,其中一些传感器已完美校准,而另一些未校准。我们确定了一个成本函数,其最小化器是未知参数(DOA和未校准传感器的增益和相位)的统计上一致且高效的估计量。接下来,我们提出一种迭代算法,以寻找该成本函数的最小值。所提出的算法可以保证收敛。将估计算法的性能与Cramer Rao界限(CRB)进行比较。边界的推导也包括在内。结果表明,通过将未校准的传感器添加到精确校准的阵列中,可以提高DOA精度。此外,可以分辨的光源的数量可以大于阵列的校准部分可以分辨的光源的数量。

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