Iterative Cyclostationarity-Based Feature Detection of Multiple Primary Signals for Spectrum Sharing Scenarios

H. Harada, H. Fujii, T. Furuno, S. Miura, T. Ohya
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引用次数: 3

Abstract

One of the important and widely used detection techniques is cyclostationarity-based feature detection, because the method does not need prior information such as signal bandwidth or frame format, and time and frequency synchronization are likewise not required. The original cyclostationarity cannot distinguish signals if several signals have the same signal format and parameters, but the cyclostationarity-inducing transmission method can overcome this problem by inducing different features in the OFDM signals that have the same parameters. Another problem of conventional cyclostationarity-based feature detection is that the detection probability of weak signals worsens if multiple signals with different received-power levels are captured simultaneously. This paper proposes iterative cyclostationarity-based feature detection to detect such weak signals. The proposed detection method suppresses the effects of previously-detected signals in the cyclic auto-correlation domain, and so improves the detection probability of the weak signals. The detection performances of the conventional and proposed detection methods are evaluated by computer simulations. The results reveal the effectiveness of the proposed detection in spectrum sharing scenarios.
基于迭代循环平稳的多主信号频谱共享特征检测
基于循环平稳性的特征检测是一种重要且应用广泛的检测技术,因为该方法不需要信号带宽或帧格式等先验信息,也不需要时间和频率同步。如果多个信号具有相同的信号格式和参数,原始的循环平稳性无法区分信号,而诱导循环平稳性传输方法可以通过在具有相同参数的OFDM信号中诱导不同的特征来克服这一问题。传统的基于循环平稳性的特征检测的另一个问题是,如果同时捕获多个不同接收功率的信号,则弱信号的检测概率会下降。本文提出了基于迭代循环平稳的特征检测方法来检测这类弱信号。该检测方法抑制了先前检测信号在循环自相关域中的影响,从而提高了微弱信号的检测概率。通过计算机仿真对传统检测方法和提出的检测方法的检测性能进行了评价。结果表明,该方法在频谱共享场景下是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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