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2D-frequency domain identification of complex sinusoids in the presence of additive noise

机译:添加剂噪声存在下复合正弦曲线的2D频域鉴定

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This paper describes a new approach for identifying the parameters of two-dimensional complex sinusoids from a finite number of measurements, in presence of additive and uncorrelated two-dimensional white noise. The proposed approach is based on using frequency domain data. The new method extends to the two-dimensional (2D) case some recent results obtained with reference to the frequency ESPRIT algorithm. The properties of the proposed method are analyzed by means of Monte Carlo simulations and its features are compared with those of a classical time domain estimation algorithm. The practical advantages of the method are highlighted. In fact the novel approach can operate just on a specified sub-area of the 2D spectrum. This area-selective feature allows a drastic reduction of the computational complexity, which is usually very high when standard time domain methods are used.
机译:本文介绍了一种新方法,用于在附加和不相关的二维白噪声存在下,从有限数量的测量中识别二维复杂正弦曲线的参数。所提出的方法是基于使用频域数据。新方法延伸到二维(2D)案例,参考频率ESPRIT算法获得的一些最近结果。通过蒙特卡罗模拟分析所提出的方法的性质,并且其特征与经典时域估计算法的特征进行了比较。该方法的实际优点突出显示。实际上,新颖的方法可以在2D频谱的指定子区域上运行。该区域选择性特征允许急剧降低计算复杂性,当使用标准时间域方法时,通常非常高。

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