A Stochastic Model for the Generation of Correlated Sea Clutter

D. Luber, U. Siart
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Abstract

Maritime Conditions represent a challenging environment for radar detection due to the so-called sea clutter. It may lead to a lower probability of a correct target detection. Thus, a detailed modelling of sea clutter with its time-dependent correlations is crucial for evaluating the robustness of modern radar systems and their signal processing. This paper utilizes a stochastic approach to generate time-correlated sea clutter, dependent of the used radar system, the environment and the measuring geometry. Therefore, different models are used to determine the RCS of the illuminated sea surface, the time-dependent correlations and finally the statistical distribution of the received signal-amplitudes. Furthermore, bistatic radar geometries should be at the scope of this paper. Afterwards the simulated signal data is compared and validated with free accessible, recorded radar data from different locations and environmental conditions. The comparison with the correlation properties and probability density functions of the radar data shows good accordance with the data generated by the model. Furthermore the results show that generating sea clutter with the developed stochastic model and a minimum of basic observeable and available quantities (sea state, wind direction) is sufficient accurate and possible. By utilizing the presented method, time-correlated radar data, which imitates the different properties of real-world sea clutter, is generated in an efficient, less time consuming and reliable laboratory environment with a minimum of known environmental parameters.
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相关海杂波产生的随机模型
由于所谓的海杂波,海洋条件对雷达探测来说是一个具有挑战性的环境。这可能导致正确检测目标的概率较低。因此,对海杂波及其随时间相关的详细建模对于评估现代雷达系统及其信号处理的鲁棒性至关重要。本文利用随机方法生成时间相关海杂波,这取决于所使用的雷达系统、环境和测量几何形状。因此,采用不同的模型来确定被照海面的RCS、随时间变化的相关关系以及接收到的信号幅度的统计分布。此外,双基地雷达几何应该在本文的范围内。然后,将模拟信号数据与来自不同位置和环境条件的可自由访问的记录雷达数据进行比较和验证。通过与雷达数据的相关特性和概率密度函数的比较,表明该模型与模型生成的数据吻合较好。结果表明,利用所建立的随机模式和最小的基本观测量(海况、风向)产生海杂波是足够准确和可能的。利用该方法,模拟真实海杂波不同特性的时间相关雷达数据可以在一个高效、耗时少、可靠的实验室环境中生成,并且已知的环境参数最少。
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