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首页> 外文期刊>Journal of nonparametric statistics >Direct deconvolution density estimation of a mixture distribution motivated by mutation effects distribution
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Direct deconvolution density estimation of a mixture distribution motivated by mutation effects distribution

机译:由突变效应分布引起的混合物分布的直接反卷积密度估计

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摘要

The mutation effect distribution is essential for understanding evolutionary dynamics. However, the existing studies on this problem have had limited resolution. So far, the most widely used method is to fit some parametric distribution, such as an exponential distribution whose validity has not been checked. In this paper, we propose a nonparametric density estimator for the mutation effect distribution, based on a deconvolution approach. Consistency of the estimator is also established. Unlike the existing deconvolution estimators, we cover the case that the target variable has a mixture structure with a pointmass and a continuous component. To study the property of the proposed estimator, several simulation studies are performed. In addition, an application for modelling virus mutation effects is provided.
机译:突变效应分布对于理解进化动力学至关重要。但是,有关此问题的现有研究解决方案有限。到目前为止,最广泛使用的方法是拟合某些参数分布,例如尚未检查其有效性的指数分布。在本文中,我们基于反卷积方法提出了一种用于突变效应分布的非参数密度估计器。还建立了估计量的一致性。与现有的反卷积估计器不同,我们讨论了目标变量具有带有点质量和连续分量的混合结构的情况。为了研究所提出的估计量的性质,进行了一些模拟研究。另外,提供了用于建模病毒突变效应的应用。

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