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Single-Snapshot Direction-of-Arrival Estimation of Multiple Targets using a Multi-Layer Perceptron

机译:使用多层感知器的多个目标的单快照到达方向估计

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An alternative approach to high-resolution direction-of-arrival estimation in the context of automotive FMCW signal processing is shown by training a neural network with simulation as well as experimental data to estimate the mean and distance of the azimuth angles from two targets. Testing results are post-processed to obtain the estimated azimuth angles which can be validated afterwards. The performance of the proposed neural network is then compared with a reference implementation of a maximum likelihood estimator. Final evaluations show super-resolution like performance with significantly reduced computation time, which is expected to have an impact on future multi-dimensional high-resolution DoA estimation.
机译:通过训练具有仿真和实验数据的神经网络来估计来自两个目标的方位角的平均值和距离,展示了在汽车FMCW信号处理背景下高分辨率到达方向估计的另一种方法。对测试结果进行后处理以获得估计的方位角,然后可以对其进行验证。然后将提出的神经网络的性能与最大似然估计器的参考实现进行比较。最终评估显示出类似超分辨率的性能,并且计算时间大大减少,预计这将对未来的多维高分辨率DoA估计产生影响。

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