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Leave Pima Indians Alone: Binary Regression as a Benchmark for Bayesian Computation

机译:让比马印第安人独自一人:二元回归作为贝叶斯计算的基准

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摘要

Whenever a new approach to perform Bayesian computation is introduced, a common practice is to showcase this approach on a binary regression model and datasets of moderate size. This paper discusses to which extent this practice is sound. It also reviews the current state of the art of Bayesian computation, using binary regression as a running example. Both sampling-based algorithms (importance sampling, MCMC and SMC) and fast approximations (Laplace, VB and EP) are covered. Extensive numerical results are provided, and are used to make recommendations to both end users and Bayesian computation experts. Implications for other problems (variable selection) and other models are also discussed.
机译:每当引入执行贝叶斯计算的新方法时,通常的做法是在二进制回归模型和中等大小的数据集上展示此方法。本文讨论了这种做法在何种程度上是合理的。它还使用二进制回归作为运行示例回顾了贝叶斯计算的最新技术水平。涵盖了基于采样的算法(重要采样,MCMC和SMC)和快速近似(Laplace,VB和EP)。提供了广泛的数值结果,并用于向最终用户和贝叶斯计算专家提出建议。还讨论了其他问题(变量选择)和其他模型的含义。

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