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A methodology for acoustic seafloor classification

机译:声学海底分类方法

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A seafloor classification methodology, based on a parameterization of the reverberation probability density function in conjunction with neural network classifiers, is evaluated through computer simulations. Different seafloor provides are represented by a number of scatterer distributions exhibiting various degrees of departure from the nominal Poisson distribution. Using a computer simulation program, these distributions were insonified at different spatial scales by varying the transmitted pulse length. The statistical signature obtained consists of reverberation kurtosis estimates as a function of pulse length. Two neural network classifiers are presented with the task of discriminating among the various scatterer distributions based on obtained acoustic signatures. The results indicate that this approach offers considerable promise for practical, realizable solutions to the problem of remote seafloor classification.
机译:通过计算机仿真评估基于混响概率密度函数的参数化以及神经网络分类器的海底分类方法。不同的海底提供量由显示出与名义泊松分布有不同程度偏离的多个散射体分布表示。使用计算机仿真程序,通过改变发射的脉冲长度,可以在不同的空间尺度上对这些分布进行声处理。获得的统计特征包括混响峰度估计值与脉冲长度的关系。提出了两个神经网络分类器,其任务是基于获得的声学特征来区分各种散射体分布。结果表明,该方法为解决远程海底分类问题的实用,可实现的解决方案提供了可观的前景。

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