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在使用近似贝叶斯计算拟合模型时考虑误差。

Taking error into account when fitting models using Approximate Bayesian Computation.

机构信息

School of Biological Sciences, University of Reading, Harborne Building, Whiteknights, Reading, Berkshire, RG6 6AS, United Kingdom.

Cognitive Science and Artificial Intelligence, School of Humanities, Tilburg University, PO Box 90153, 5000 LE, Tilburg, The Netherlands.

出版信息

Ecol Appl. 2018 Mar;28(2):267-274. doi: 10.1002/eap.1656. Epub 2018 Jan 23.

Abstract

Stochastic computer simulations are often the only practical way of answering questions relating to ecological management. However, due to their complexity, such models are difficult to calibrate and evaluate. Approximate Bayesian Computation (ABC) offers an increasingly popular approach to this problem, widely applied across a variety of fields. However, ensuring the accuracy of ABC's estimates has been difficult. Here, we obtain more accurate estimates by incorporating estimation of error into the ABC protocol. We show how this can be done where the data consist of repeated measures of the same quantity and errors may be assumed to be normally distributed and independent. We then derive the correct acceptance probabilities for a probabilistic ABC algorithm, and update the coverage test with which accuracy is assessed. We apply this method, which we call error-calibrated ABC, to a toy example and a realistic 14-parameter simulation model of earthworms that is used in environmental risk assessment. A comparison with exact methods and the diagnostic coverage test show that our approach improves estimation of parameter values and their credible intervals for both models.

摘要

随机计算机模拟通常是回答与生态管理相关问题的唯一实用方法。然而,由于其复杂性,此类模型难以校准和评估。近似贝叶斯计算 (ABC) 为解决此问题提供了一种越来越受欢迎的方法,已广泛应用于各种领域。然而,确保 ABC 估计的准确性一直具有挑战性。在这里,我们通过将误差估计纳入 ABC 协议来获得更准确的估计。我们展示了如何在数据由相同数量的重复测量组成且误差可以假定为正态分布且独立的情况下做到这一点。然后,我们为概率 ABC 算法推导正确的接受概率,并更新用于评估准确性的覆盖率测试。我们将这种方法(我们称之为误差校准的 ABC)应用于一个玩具示例和一个用于环境风险评估的真实的 14 个参数蚯蚓模拟模型。与精确方法和诊断覆盖率测试的比较表明,我们的方法提高了两个模型的参数值及其置信区间的估计。

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