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Frequency shift keyed narrowband interference rejection: optimal exponential weighting factor for the RLS algorithm

机译:频移键控窄带干扰抑制:RLS算法的最佳指数加权因子

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Previous work has shown that co-channel narrowband interference can limit the performance of direct sequence spread spectrum (DSSS) and high frequency (HF) systems. Narrowband interference (NBI) can be single tone, chirped or frequency shift keyed (FSK) in nature and numerous techniques for its removal have been proposed. Linear adaptive prediction filters based on autoregressive modelling have been suggested owing to their ability to perform in a non-stationary environment. In the FSK narrowband interference case, adaptive filters are susceptible to excess residual errors owing to instantaneous frequency step changes and the finite convergence time required for the filter to adapt to a new interference frequency. The signal degradation owing to this type of interference becomes greater in high SNR regimes and has been found to be a function of the frequency parameters of the FSK interference signal. This paper discusses the convergence and frequency tracking properties of the recursive least squares (RLS) adaptive lattice filter using a posteriori estimation errors in the presence of FSK narrowband interference. An optimal exponential weighting factor that balances convergence time and steady state error is derived for this case of NBI. Results are compared to those of the previously proposed fast converging minimum frequency error (FCMFE) RLS lattice filter.
机译:先前的工作表明,同频道窄带干扰会限制直接序列扩频(DSSS)和高频(HF)系统的性能。窄带干扰(NBI)本质上可以是单音,线性调频或频移键控(FSK),并且已提出了多种消除窄带干扰的技术。由于其在非平稳环境中执行的能力,已经提出了基于自回归建模的线性自适应预测滤波器。在FSK窄带干扰情况下,由于瞬时频率阶跃变化以及滤波器适应新的干扰频率所需的有限收敛时间,自适应滤波器容易受到过多的残留误差的影响。由于这种类型的干扰而导致的信号衰减在高SNR情况下变得更大,并且已发现是FSK干扰信号的频率参数的函数。本文讨论了在存在FSK窄带干扰的情况下使用后验估计误差的递归最小二乘(RLS)自适应晶格滤波器的收敛性和频率跟踪特性。对于这种NBI,可以得出平衡收敛时间和稳态误差的最佳指数加权因子。将结果与先前提出的快速收敛最小频率误差(FCMFE)RLS晶格滤波器的结果进行比较。

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