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Review: An introduction to Bayesian methods for analyzing chemistry data Part II: A review of applications of Bayesian methods in chemistry

机译:综述:贝叶斯方法用于分析化学数据的第二部分:贝叶斯方法在化学中的应用概述

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摘要

A critical literature review with 207 references is presented on the use of Bayes theorem in chemistry. Discussion is grouped into areas of application, including general chemistry, chromatography and mass spectrometry, spectroscopy, microbiology, and metrology in chemistry and environmental chemistry. Reference to methodology is given to Part I of this series. Recurring themes throughout chemistry are parameter estimation (often using marginalization), joint distributions calculated by Markov Chain Monte Carlo methods, Bayesian classification, Bayesian regularized artificial neural networks, and the use of Bayesian priors to incorporate expert knowledge.
机译:关于贝叶斯定理在化学中的应用,发表了207篇文献的重要文献综述。讨论分为应用领域,包括普通化学,色谱和质谱,光谱学,微生物学以及化学和环境化学的计量学。本方法的参考在本系列的第一部分中。在整个化学过程中,反复出现的主题包括参数估计(通常使用边际化),通过马尔可夫链蒙特卡洛方法计算的联合分布,贝叶斯分类,贝叶斯正则化人工神经网络以及使用贝叶斯先验方法来合并专家知识。

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