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Space-Time-Frequency Adaptive Processor for Multiple Interference Suppression in GNSS Applications

机译:GNSS应用中用于多重干扰抑制的空时频自适应处理器

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摘要

To enhance the multiple interference suppression performance of global navigation satellite system (GNSS) receivers without extra antenna elements, a space-time-frequency adaptive processor (STFAP) is investigated. Firstly, based on the analysis of the autocorrelation function of the multicomponent signal, we propose a common period estimation and data block technique to segment the received signal data into blocks. Secondly, the signal data in each block are short-time Fourier transformed into time-frequency (TF) domain, and the corresponding TF points with similar frequency characteristics are regrouped to structure space-time-frequency (STF) data matrixes. Finally, a space-time-frequency minimum output power- (STF-MOP) based weight calculation method is introduced to suppress multiple interfering signals according to their sparse characteristics in TF and space domains. Simulation results show that the proposed STFAP can effectively combat more wideband periodic frequency-modulated (WBPFM) interferences even some of them arriving from the same direction as GNSS signals without increasing the number of antenna elements.
机译:为了提高不带额外天线元件的全球导航卫星系统(GNSS)接收机的多重干扰抑制性能,研究了一种时空频率自适应处理器(STFAP)。首先,基于对多分量信号自相关函数的分析,我们提出了一种公共周期估计和数据块技术,将接收到的信号数据分成多个块。其次,将每个块中的信号数据进行短时傅立叶变换到时频(TF)域,并将具有相似频率特性的相应TF点重新组合为结构时空(STF)数据矩阵。最后,提出了一种基于空时频最小输出功率(STF-MOP)的权重计算方法,以根据多个干扰信号在TF域和空间域中的稀疏特性来抑制多个干扰信号。仿真结果表明,所提出的STFAP可以有效地抵抗更多的宽带周期性调频(WBPFM)干扰,即使其中一些干扰来自与GNSS信号相同的方向,也不会增加天线元件的数量。

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