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A Blind OFDM Detection and Identification Method Based on Cyclostationarity for Cognitive Radio Application

机译:基于循环平稳性的认知无线电盲OFDM检测与识别方法

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摘要

The key issue in cognitive radio is to design a reliable spectrum sensing method that is able to detect the signal in the target channel as well as to recognize its type. In this paper, focusing on classifying different orthogonal frequency-division multiplexing (OFDM) signals, we propose a two-step detection and identification approach based on the analysis of the cyclic autocorrelation function. The key parameters to separate different OFDM signals are the subcarrier spacing and symbol duration. A symmetric peak detection method is adopted in the first step, while a pulse detection method is used to determine the symbol duration. Simulations validate the proposed method.
机译:认知无线电的关键问题是设计一种可靠的频谱感测方法,该方法能够检测目标信道中的信号并识别其类型。在本文中,针对不同的正交频分复用(OFDM)信号进行分类,我们在分析循环自相关函数的基础上,提出了一种两步检测和识别方法。分离不同OFDM信号的关键参数是子载波间隔和符号持续时间。第一步采用对称峰值检测方法,而脉冲检测方法用于确定符号持续时间。仿真结果验证了该方法的有效性。

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