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Frequency Invariant Uniform Concentric Circular Arrays with Directional Elements

机译:带有方向性元件的频率不变均匀同心圆阵列

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摘要

A new approach for designing frequency invariant (FI) uniform concentric circular arrays (UCCAs) with directional elements is proposed, and their applications to direction-of-arrival (DOA) estimation and adaptive beamforming are studied. By treating the sensors along the radial direction of the UCCA as linear subarrays and using appropriately designed beamformers, each subarray is transformed to a virtual element with appropriate directivity. Consequently, the whole UCCA can be viewed as a virtual uniform circular array (UCA) with desired element directivity for broadband processing. By extending the approach for designing FI-UCAs, the frequency dependency of the phase modes of the virtual UCA is compensated to facilitate broadband DOA and adaptive beamforming. Both the linear array beamformers (LABFs) and compensation filters can be designed separately using second- order cone programming (SOCP). Moreover, a new method to tackle the possible noise amplification problem in such large arrays by imposing additional norm constraints on the design of the compensation filters is proposed. The advantages of this decoupled approach are 1) the complicated design problem of large UCCAs can be decoupled into simpler problems of designing the LABFs and compensation filters, and 2) directional elements, which are frequently encountered, can be treated readily under the proposed framework. Numerical examples are provided to demonstrate the effectiveness and improvement of the proposed methods in DOA estimation, adaptive beamforming, and elevation control over the conventional FI-UCCA design method.
机译:提出了一种设计带有方向性元素的频率不变(FI)均匀同心圆阵列(UCCA)的新方法,并研究了它们在到达方向(DOA)估计和自适应波束形成中的应用。通过将沿UCCA的径向方向的传感器视为线性子阵列,并使用适当设计的波束形成器,每个子阵列都将转换为具有适当方向性的虚拟元素。因此,可以将整个UCCA视为具有宽带处理所需元素方向性的虚拟均匀圆形阵列(UCA)。通过扩展设计FI-UCA的方法,可以补偿虚拟UCA相位模式的频率依赖性,以促进宽带DOA和自适应波束形成。线性阵列波束形成器(LABF)和补偿滤波器都可以使用二阶锥规划(SOCP)进行单独设计。此外,提出了一种通过在补偿滤波器的设计中施加额外的范数约束来解决这种大阵列中可能出现的噪声放大问题的新方法。这种解耦方法的优点是:1)大型UCCA的复杂设计问题可以分解为设计LABF和补偿滤波器的较简单问题,以及2)在建议的框架下可以轻松解决经常遇到的定向元件。提供了数值示例,以证明所提出的方法在DOA估计,自适应波束形成和高程控制方面优于常规FI-UCCA设计方法的有效性和改进。

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