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Reduced-Rank MDL Method for Source Enumeration in High-Resolution Array Processing

机译:高分辨率数组处理中用于源枚举的降秩MDL方法

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This paper proposes a reduced-rank minimum description length (MDL) method to enumerate the incident waves impinging on a uniform linear array (ULA). First, a new observation data and a reference signal are formed from sensor data by means of the shift-invariance property of the ULA. A cross-correlation between them is calculated, which is able to capture signal information and efficiently suppress additive noise. Second, the normalized cross-correlation is used as initial information for a recursion procedure to quickly partition the observation data into two orthogonal components in a signal subspace and a reduced-rank noise subspace. The components in the noise subspace are employed to calculate the total code length that is required to encode the observation data. Finally, the model with the shortest code length, namely the minimum description length, is chosen as the best model. Unlike the traditional MDL methods, this method partitions the observation data into the cleaner signal and noise subspace components by means of the recursion procedure, avoiding the estimation of a covariance matrix and its eigendecomposition. Thus, the method has the advantage of computational simplicity. Its performance is demonstrated via numerical results.
机译:本文提出了一种降秩最小描述长度(MDL)方法,以枚举入射在均匀线性阵列(ULA)上的入射波。首先,借助ULA的平移不变性特性,从传感器数据中形成新的观测数据和参考信号。计算它们之间的互相关,它能够捕获信号信息并有效地抑制附加噪声。其次,归一化互相关被用作递归过程的初始信息,以将观察数据快速划分为信号子空间和降秩噪声子空间中的两个正交分量。噪声子空间中的分量用于计算对观察数据进行编码所需的总代码长度。最后,选择具有最短代码长度(即最小描述长度)的模型作为最佳模型。与传统的MDL方法不同,此方法通过递归过程将观测数据分为更清晰的信号和噪声子空间分量,从而避免了估计协方差矩阵及其本征分解的问题。因此,该方法具有计算简单的优点。通过数值结果证明了其性能。

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