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首页> 外文期刊>Quaternary geochronology >Characterizing the dynamics of amino acid racemization using time-dependent reaction kinetics: A Bayesian approach to fitting age-calibration models
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Characterizing the dynamics of amino acid racemization using time-dependent reaction kinetics: A Bayesian approach to fitting age-calibration models

机译:使用时间依赖性反应动力学表征氨基酸外消旋动力学:拟合年龄校正模型的贝叶斯方法

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Robust estimates of specimen age and associated precision are critical to the study of many palaeobiological and sedimentological processes. While recent work has explored a variety of methods for calibrating the rate of amino acid racemization using paired radiocarbon analyses, and for assessing the precision of age estimates obtained using these models, the calibration models themselves, and the underlying assumptions used to construct them, have not yet been rigorously evaluated. Here we use a Bayesian model fitting procedure to compare three previously proposed calibration functions ("apparent parabolic kinetics" [APK], "simple power-law kinetics" [SPK], and "constrained power-law kinetics" [CPK]), and we propose a new function, "time-dependent reaction kinetics" (TDK), which has a mechanistic basis in first-order reversible kinetics. We then evaluate which of three statistical distributions - normal, lognormal, gamma - best describes the prediction uncertainty associated with each age-calibration function. The Bayesian fitting method outlined here is superior to the least-squares fitting approach commonly used because it allows greater flexibility in modelling this uncertainty and its effects on the precision of age estimates. To facilitate the adoption of this methodology, we provide an analytical script that can be implemented on a variety of computer platforms using freely available software.Regardless of the fitted calibration function, we find that the gamma and lognormal distributions more accurately describe prediction uncertainty than to the normal distribution. Three of the four calibration functions perform well (the exception being APK), but no single function performs best in all situations. In general, TDK and CPK (which we show to be a special case of TDK) yield superior model fits to SPK when d/. l is close to saturation, and moreover provide useful mechanistically-based functions for calibrating amino acid racemization datasets.
机译:对标本年龄和相关精度的可靠估计对于许多古生物学和沉积学过程的研究至关重要。尽管最近的工作探索了多种方法,使用成对的放射性碳分析来校准氨基酸外消旋速率,以及评估使用这些模型获得的年龄估计值的准确性,但校准模型本身以及用于构建它们的基本假设具有尚未经过严格评估。在这里,我们使用贝叶斯模型拟合程序来比较三个以前提出的校准函数(“表观抛物线动力学” [APK],“简单幂律动力学” [SPK]和“约束幂律动力学” [CPK]),以及我们提出了一个新函数“时变反应动力学”(TDK),该函数在一阶可逆动力学中具有机械基础。然后,我们评估三个统计分布中的哪一个(正态,对数正态,伽玛)最能描述与每个年龄校准函数相关的预测不确定性。本文概述的贝叶斯拟合方法优于常用的最小二乘拟合方法,因为它在建模此不确定性及其对年龄估计精度的影响方面具有更大的灵活性。为了方便采用此方法,我们提供了一个分析脚本,可以使用免费软件在各种计算机平台上实施该脚本,无论是否安装了校准功能,我们都发现伽玛和对数正态分布比预测误差更准确地描述了预测不确定性。正态分布。四个校准功能中的三个功能表现良好(APK是一个例外),但是没有一个功能在所有情况下都表现最佳。一般而言,TDK和CPK(我们证明是TDK的特例)在d /时可产生优于SPK的模型。 l接近饱和,并且还提供了有用的基于机械的功能来校准氨基酸消旋化数据集。

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