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Near-field source localization based on sparse reconstruction of sensor-angle distributions

机译:基于传感器角度分布稀疏重建的近场源定位

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In this paper, we consider a problem of near-field source localization using the sensor-angle distribution (SAD) that views the source range and direction-of-arrival (DOA) information as sensor-dependent phase progression. The SAD draws parallel to quadratic time-frequency distributions and, as such, is able to reveal the changes in the spatial frequency over sensor positions. In particular, for a moderate source range, the SAD signature is of polynomial shape, thus simplifying the parameter estimation. We consider sparse arrays where the array sensors are located on a grid but with missing positions. Sparse reconstruction techniques are used to estimate the SAD in the joint space and spatial frequency domain, and the results are then mapped back to source range and DOA estimation for source localization. The effectiveness of the proposed technique is verified using simulation results.
机译:在本文中,我们考虑使用传感器角分布(SAD)视野源范围和到达方式(DOA)信息作为传感器依赖的阶段进展的近场源定位问题。 SAD平行于二次时频分布,并且因此能够揭示空间频率的变化通过传感器位置。特别地,对于中等源范围,悲伤的签名是多项式形状,从而简化参数估计。我们考虑阵列传感器位于网格上但具有缺失位置的稀疏阵列。稀疏的重建技术用于估计联合空间和空间频域中的SAD,然后将结果映射回源范围和DOA估计来源定位。使用模拟结果验证所提出的技术的有效性。

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