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首页> 外文期刊>The Journal of the Acoustical Society of America >Scattering statistics of rock outcrops: Model-data comparisons and Bayesian inference using mixture distributions
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Scattering statistics of rock outcrops: Model-data comparisons and Bayesian inference using mixture distributions

机译:岩体露头的散射统计:模型数据比较和使用混合分布的贝叶斯推断

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摘要

The probability density function of the acoustic field amplitude scattered by the seafloor was measured in a rocky environment off the coast of Norway using a synthetic aperture sonar system, and is reported here in terms of the probability of false alarm. Interpretation of the measurements focused on finding the appropriate class of statistical models (single versus two-component mixture models), and on appropriate models within these two classes. It was found that two-component mixture models performed better than single models. The two mixture models that performed the best (and had a basis in the physics of scattering) were a mixture between two K distributions, and a mixture between a Rayleigh and generalized Pareto distribution. Bayes' theorem was used to estimate the probability density function of the mixture model parameters. It was found that the K-K mixture exhibits a significant correlation between its parameters. The mixture between the Rayleigh and generalized Pareto distributions also had a significant parameter correlation, but also contained multiple modes. It is concluded that the mixture between two K distributions is the most applicable to this dataset.
机译:海底散射的声场幅度的概率密度函数在挪威海岸的岩石环境中使用合成孔声纳系统来测量,并且在这里报告了误报的可能性。解释测量专注于找到适当类别的统计模型(单一与双组分混合模型),以及在这两类中的适当模型上。发现双组分混合物模型比单一模型更好。在瑞利和广义静脉分布之间的混合物之间进行最佳(并且在散射物理学中具有基础)的两种混合物模型是混合物。贝叶斯定理用于估计混合模型参数的概率密度函数。发现K-K混合物在其参数之间表现出显着的相关性。瑞利和广义帕吻码分布之间的混合物也具有显着的参数相关性,而且包含多种模式。结论是,两个K分布之间的混合物是最适用于此数据集。

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