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DOA Finding with Support Vector Regression Based Forward–Backward Linear Prediction

机译:基于支持向量回归的前向-后向线性预测的DOA查找

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摘要

Direction-of-arrival (DOA) estimation has drawn considerable attention in array signal processing, particularly with coherent signals and a limited number of snapshots. Forward–backward linear prediction (FBLP) is able to directly deal with coherent signals. Support vector regression (SVR) is robust with small samples. This paper proposes the combination of the advantages of FBLP and SVR in the estimation of DOAs of coherent incoming signals with low snapshots. The performance of the proposed method is validated with numerical simulations in coherent scenarios, in terms of different angle separations, numbers of snapshots, and signal-to-noise ratios (SNRs). Simulation results show the effectiveness of the proposed method.
机译:到达方向(DOA)估计在阵列信号处理中引起了极大的关注,特别是在相干信号和有限数量的快照的情况下。向前-向后线性预测(FBLP)能够直接处理相干信号。支持向量回归(SVR)对于少量样本具有鲁棒性。本文提出了结合FBLP和SVR的优势来估计低快照的相干输入信号的DOA。在不同的角度间隔,快照数量和信噪比(SNR)方面,在相干场景中通过数值模拟验证了该方法的性能。仿真结果表明了该方法的有效性。

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