基于分形的变步长最小均方算法的海杂波雷达目标检测

Ningbo Liu, Zhiyu Che, J. Guan, Jian Zhang
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引用次数: 3

摘要

介绍了基于分形的变步长最小均方(FB-VSLMS)算法,提出了一种海杂波条件下雷达目标检测模型。FB-VSLMS算法处理一类特定的分形信号,除其中一个步长参数需要时变约束外,其余参数的约束都是时变的。步长矩阵完全由确定性赫斯特指数的知识确定。基于该算法的模型适合于对固有非平稳的分形信号族中的信号进行跟踪。最后,对新模型的性能进行了分析。通过对x波段真实海杂波的验证,表明该模型对海杂波中的点目标检测是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fractal-based variable step-size least mean square algorithm for radar target detection in sea clutter
This paper introduces fractal-based variable step-size least mean square(FB-VSLMS) algorithm and proposes a model for radar target detection in sea clutter. FB-VSLMS algorithm deals with a specific class of fractal signals and except one of the step-size parameters requiring time-varying constraints, the constraints on the remaining parameters are time-invariant. And the step-size matrix is determined completely with the knowledge of the deterministic Hurst exponent. The model based on this algorithm is suited for tracking signals from the family of fractal signals that are inherently nonstationary. In the end, the performance of the novel model is analyzed. By the verification of X-band real sea clutter, the model is shown to be effective for point target detection in sea clutter.
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