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DOA esitmation based on support vector machine — Robustness analysis on array errors

机译:基于支持向量机的DOA估计—阵列错误的鲁棒性分析

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Support vector machine(SVM) has gained good performance in classification. We treat the DOA estimation problem as a multi-class classification problem, and solve it by SVM. Train samples generated from array output data with known directions are used to train the SVM and construct classifiers, and then the classifiers will evaluate the test sample generated from unknown direction and derive the final DOA estimation result. The robustness for array errors is analyzed for the DOA estimation based on SVM. Simulation results are presented to confirm the robustness of the algorithm.
机译:支持向量机在分类方面取得了良好的性能。我们将DOA估计问题视为多类分类问题,并通过SVM解决。从具有已知方向的阵列输出数据生成的训练样本用于训练SVM并构造分类器,然后分类器将评估从未知方向生成的测试样本,并得出最终的DOA估计结果。针对基于SVM的DOA估计,分析了阵列错误的鲁棒性。仿真结果表明了该算法的鲁棒性。

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