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Behavior of the Gibbs Sampler When Conditional Distributions Are Potentially Incompatible

机译:条件分布可能不兼容时吉布斯采样器的行为

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摘要

The Gibbs sampler has been used extensively in the statistics literature. It relies on iteratively sampling from a set of compatible conditional distributions and the sampler is known to converge to a unique invariant joint distribution. However, the Gibbs sampler behaves rather differently when the conditional distributions are not compatible. Such applications have seen increasing use in areas such as multiple imputation. In this paper, we demonstrate that what a Gibbs sampler converges to is a function of the order of the sampling scheme. Besides providing the mathematical background of this behavior, we also explain how that happens through a thorough analysis of the examples.
机译:吉布斯采样器已在统计文献中广泛使用。它依赖于从一组兼容的条件分布中进行迭代采样,并且已知采样器收敛到唯一不变的联合分布。但是,当条件分布不兼容时,Gibbs采样器的行为会大不相同。在诸如多重插补之类的领域中,此类应用已得到越来越多的使用。在本文中,我们证明Gibbs采样器收敛到的是采样方案阶数的函数。除了提供这种行为的数学背景之外,我们还将通过对示例的全面分析来说明这种情况是如何发生的。

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