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Spectrum sensing in cognitive radios: Design of DFT filter banks achieving maximal time-frequency resolution

机译:认知无线电中的频谱感应:实现最大时频分辨率的DFT滤波器组设计

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摘要

Filter banks facilitate an estimation of the power spectral density of broad-band non-stationary signals, an operation required in many cognitive radio systems. The samples at the filter bank output may serve as a basis for an estimation of the input signal energy within any time-frequency (TF) region of interest. In order to achieve a high resolution in both time and frequency, the prototype window underlying a Discrete Fourier Transform (DFT) filter bank needs to exhibit high TF concentration. Moreover, in order to provide uncorrelated samples in case of white input processes, the TF-translated versions of the prototype window that underlie the elementary filtering operations need to constitute an orthogonal set. In this paper we present a technique to design DFT filter banks that possess these two required properties in an optimal manner. The numerical optimization procedure takes advantage of a parametrization of paraunitary filter banks and relies on semidefinite programming. We analyze the residual leakage of our optimized filter banks and draw a comparison against Thomson's multitaper method.
机译:滤波器组有助于估算宽带非平稳信号的功率谱密度,这是许多认知无线电系统所需的操作。滤波器组输出处的样本可以用作估计任何感兴趣的时频(TF)区域内输入信号能量的基础。为了在时间和频率上实现高分辨率,离散傅立叶变换(DFT)滤波器组下面的原型窗口需要显示高TF浓度。而且,为了在白色输入过程的情况下提供不相关的样本,作为基本滤波操作基础的原型窗口的TF转换版本需要构成正交集。在本文中,我们提出了一种设计DFT滤波器组的技术,该技术以最优方式拥有这两个必需的属性。数值优化程序利用了准unit滤波器组的参数化,并依赖于半定规划。我们分析了优化的滤波器组的残留泄漏,并与Thomson的多锥度方法进行了比较。

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