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Approximate Bayesian computation using indirect inference

机译:使用间接推理的近似贝叶斯计算

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摘要

We present a novel approach for developing summary statistics for use in approximate Bayesian computation (ABC) algorithms by using indirect inference. ABC methods are useful for posterior inference in the presence of an intractable likelihood function. In the indirect inference approach to ABC the parameters of an auxiliary model fitted to the data become the summary statistics. Although applicable to any ABC technique, we embed this approach within a sequential Monte Carlo algorithm that is completely adaptive and requires very little tuning. This methodological development was motivated by an application involving data on macroparasite population evolution modelled by a trivariate stochastic process for which there is no tractable likelihood function. The auxiliary model here is based on a beta-binomial distribution. The main objective of the analysis is to determine which parameters of the stochastic model are estimable from the observed data on mature parasite worms.
机译:我们提出了一种新颖的方法,用于通过使用间接推理来开发用于近似贝叶斯计算(ABC)算法的摘要统计量。 ABC方法可用于在存在难以解决的似然函数的情况下进行后验推断。在ABC的间接推理方法中,适合数据的辅助模型的参数成为摘要统计量。尽管适用于任何ABC技术,但我们将这种方法嵌入了完全自适应且无需调整的顺序蒙特卡洛算法中。这种方法学的发展是由涉及三变量随机过程建模的宏观寄生虫种群进化数据的应用推动的,该变量没有可预测的似然函数。这里的辅助模型基于β二项式分布。分析的主要目的是根据成熟的寄生虫蠕虫的观测数据确定随机模型的哪些参数是可估计的。

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