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Neural network-based adaptive radar detection scheme for small ice targets in sea clutter

机译:基于神经网络的海杂波小型冰目标自适应雷达检测方案

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摘要

An adaptive radar detection algorithm for the detection of small pieces of ice floating in an open sea environment is presented. The detection is carried out in the time-frequency domain, which eliminates the limitations of standard Doppler processing. Instead of looking for the 'best' time-frequency representation, the detection scheme is based on the ambiguity function and the focus is more on extracting information needed for classification. The detection scheme uses a multilayer perceptron as a pattern classifier. Using actual radar data, the adaptive detection results are compared with a traditional time-frequency domain constant false-alarm rate (CFAR) processor.
机译:提出了一种自适应雷达检测算法,用于检测在公海环境中漂浮的小冰块。该检测在时频域中进行,这消除了标准多普勒处理的局限性。检测方案不是寻找“最佳”时频表示,而是基于歧义函数,并且重点更多地在于提取分类所需的信息。该检测方案使用多层感知器作为模式分类器。使用实际雷达数据,将自适应检测结果与传统的时频域恒定误报率(CFAR)处理器进行比较。

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