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Stochastic Ship-Radiated Noise Modelling Via Generative Adversarial Networks

机译:通过生成对抗网络的随机船舶辐射噪声模拟

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The design and performance evaluation of underwater acoustic (UA) communication systems in shallow water and harbour environments is a continuous challenge due to the numerous degrading factors present in the UA channel, one of which is the presence of noise generated due to nearby shipping activity. However, few research studies have examined the properties of ship-radiated noise in terms of its time-domain statistical characteristics and its negative effects on UA communication systems. We propose the use of unsupervised learning techniques to train generative models that capture the time-domain stochastic behaviours of ship-radiated noise using a publicly available database of long-term acoustic shipping noise recordings. These models can then be used for further analysis of ship-radiated noise and performance evaluation of UA orthogonal frequency-division multiplexing systems in the presence of such interference. For further validation, we include experimentally acquired ship-radiated noise recordings acquired off the coast of Caesarea, Israel. The results indicate a two component Gaussian mixture model serves as a better approximation for high frequency ship-radiated noise while generative adversarial networks produce improved realizations of shipping noise in lower frequencies.
机译:浅水和港口环境中的水下声学(UA)通信系统的设计和性能评估是由于UA通道中存在的许多降低因素导致的持续挑战,其中一个是由于附近的运输活动而产生的噪音存在。然而,很少有研究研究在其时域统计特征方面检测了船舶辐射噪声的性质及其对UA通信系统的负面影响。我们建议使用无监督的学习技术来培训使用可公开的长期声学运输噪声录制数据库捕获船舶辐射噪声时域随机行为的生成模型。然后,这些模型可以用于在这种干扰存在下进一步分析UA正交频分复用系统的船辐射噪声和性能评估。为了进一步验证,我们包括从以色列凯撒利亚海岸获取的实验获得的船舶辐射噪声记录。结果表明,两个组件高斯混合模型用于高频船辐射噪声的更好近似,而生成的对抗性网络在较低频率下产生改进的运输噪声的实现。

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