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On the small sample behavior of Dirichlet process mixture models for data supported on compact intervals

机译:关于CompleD间隔支持的Dirichlet过程混合模型的小样本行为

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摘要

Bayesian nonparametric models provide a general framework for flexible statistical modeling of modern complex data sets. We compare a rate-optimal and rate-suboptimal Bayesian nonparametric model for density estimation for data supported on a compact interval, by means of the analyses of simulated and real data. The results show that rate-optimal models are not uniformly better, across sample sizes, with respect to the way in which the posterior mass concentrates around a true model and that suboptimal models can outperform the optimal ones, even for relatively large sample sizes.
机译:Bayesian非参数模型为灵活的现代复杂数据集提供了一种灵活的统计建模框架。 我们通过模拟和实际数据的分析比较了对紧凑型间隔支持的数据的密度估计的速率最佳和速率 - 次优贝叶斯非参数模型。 结果表明,在样品尺寸方面,速率最佳模型并不均匀地更好地均匀,相对于后部质量围绕真实模型的方式,并且次优模型可以优于最佳的样本尺寸。

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