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Mixture Normal Distribution for Gibbs Sampler and Its Application in the Surface of Single Crystal

机译:GIBBS采样器的混合正态分布及其在单晶表面的应用

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Gibbs sampler is widely used in Bayesian analysis. But it is often difficult to sample from the full conditional distribution, and this hardly weakens the efficiency of Gibbs sampler. In this paper, we propose to use mixture normal distribution for Gibbs sampler. The mixture normal distribution can approximate the target distribution. So carrying more information from target distribution, the mixture normal distribution tremendously improves the efficiency of Gibbs sampler. Further more, combining with mixture normal method, Hit-and-Run algorithm can also get more efficient sampling results. Simulation results show that Gibbs sampler with mixture normal distribution outperforms other sampling algorithms. The Gibbs sampler with mixture normal distribution can also be applied to explorer the surface of single crystal.
机译:Gibbs采样器广泛用于贝叶斯分析。但是,从完全条件分布中往往难以采样,这几乎不会削弱GIBBS采样器的效率。在本文中,我们建议使用混合吉布斯采样器的正态分布。混合物正态分布可以近似目标分布。因此,从目标分布中携带更多信息,混合正常分布卓越地提高了GIBBS采样器的效率。此外,与混合的正常方法相结合,命中算法也可以获得更有效的采样结果。仿真结果表明,吉布斯采样器采用混合法线分布优于其他采样算法。具有混合物正态分布的GIBBS取样器也可以应用于探索单晶的表面。

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