基于最优阶自回归模型有效抑制地基雷达干扰

Xiaojie Bao;Guohua Wei;Jinlong Ren;Jiahao Bai
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引用次数: 0

摘要

在这封信中,我们讨论了地基空间监视雷达对星载碎片监测雷达造成的干扰减缓问题。基于抑制的方法通常涉及较高的计算复杂度,这限制了它们在需要快速响应的情况下的适用性,例如空间碎片探测。相比之下,基于自回归(AR)模型的重建提供了更快的处理速度,但当仅根据信息标准选择模型顺序时,性能会下降。此外,基于ar的单一方向重建(向前或向后)会随着时间的推移累积估计误差,导致与真实信号的偏差越来越大。为了克服这些挑战,我们提出了一种基于最优阶AR模型的干扰抑制方法,该方法包括以下几个关键步骤:干扰检测、候选阶数的双向信号重构、前向和后向重构结果的加权融合以提高重构精度、相干积累后基于信噪比(SINR)的最优阶数选择。实验结果表明,该方法具有较好的抗干扰能力和计算效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mitigating the Ground-Based Radar Interference Efficiently Based on an Autoregressive Model With Optimal Order
In this letter, we address the interference mitigation problem caused by ground-based space surveillance radars on spaceborne debris monitoring radars. Suppression-based methods often involve high computational complexity, which limits their applicability in scenarios requiring rapid response, such as space debris detection. In contrast, autoregressive (AR) model-based reconstruction offers faster processing but suffers from performance degradation when the model order is selected solely by information criteria. Moreover, AR-based reconstruction in a single direction (either forward or backward) accumulates estimation errors over time, resulting in increasing deviations from the true signal. To overcome these challenges, we propose an interference mitigation method based on an AR model with optimal order, which includes the following key steps: interference detection, bidirectional signal reconstruction with candidate orders, weighted fusion of forward and backward reconstruction results to enhance reconstruction accuracy, and optimal order selection based on the signal-to-interference-plus-noise ratio (SINR) after coherent accumulation. Experimental results demonstrate superior interference mitigation and computational efficiency of the proposed approach.
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