Wideband Temporal Spectrum Sensing Using Cepstral Features

Hanke Cheng, B. L. Mark, Y. Ephraim
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引用次数: 3

Abstract

Spectrum sensing enables secondary users in a cognitive radio network to opportunistically access portions of the spectrum left idle by primary users. Tracking spectrum holes jointly in time and frequency over a wide spectrum band is a challenging task. In one approach to wideband temporal sensing, the spectrum band is partitioned into narrowband subchannels of fixed bandwidth, which are then characterized via hidden Markov modeling using average power or energy measurements as observation data. Adjacent, correlated subchannels are recursively aggregated into channels of variable bandwidths, corresponding to the primary user signals. Thus, wideband temporal sensing is transformed into a multiband sensing scenario by identifying the primary user channels in the spectrum band. However, future changes in the configuration of the primary user channels in the multiband setup cannot generally be detected using an energy detector front end for spectrum sensing. We propose the use of a cepstral feature vector to detect changes in the spectrum envelope of a primary user channel. Our numerical results show that the cepstrum-based spectrum envelope detector performs well under moderate to high signal-to-noise ratio conditions1.
基于倒谱特征的宽带时间频谱感知
频谱感知使认知无线电网络中的辅助用户能够机会地访问主用户闲置的部分频谱。在宽频谱范围内对频谱空洞进行时间和频率联合跟踪是一项具有挑战性的任务。在一种宽带时间感知方法中,将频谱带划分为固定带宽的窄带子信道,然后使用平均功率或能量测量作为观测数据,通过隐马尔可夫建模对其进行表征。相邻的、相关的子信道递归地聚合成可变带宽的信道,对应于主用户信号。因此,通过识别频谱带中的主要用户信道,将宽带时间感知转换为多频段感知场景。然而,在多波段设置中,主要用户信道配置的未来变化通常不能使用用于频谱传感的能量检测器前端来检测。我们建议使用倒谱特征向量来检测主用户信道的频谱包络的变化。我们的数值结果表明,基于倒谱的频谱包络检测器在中高信噪比条件下表现良好。
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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