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高斯噪声对基于酵母寿命数据的冈珀茨和威布尔死亡率模型最大似然拟合的影响。

The Effect of Gaussian Noise on Maximum Likelihood Fitting of Gompertz and Weibull Mortality Models with Yeast Lifespan Data.

作者信息

Güven Emine, Akçay Sevinç, Qin Hong

机构信息

Department of Biomedical Engineering, Düzce University, Düzce, Turkey.

Department of Computer Science and Engineering, SimCenter, University of Tennessee at Chattanooga, Chattanooga, TN, USA.

出版信息

Exp Aging Res. 2019 Mar-Apr;45(2):167-179. doi: 10.1080/0361073X.2019.1586105. Epub 2019 Mar 8.

Abstract

UNLABELLED

Background/study context: Empirical lifespan data sets are often studied with the best-fitted mathematical model for aging. Here, we studied how experimental noises can influence the determination of the best-fitted aging model. We investigated the influence of Gaussian white noise in lifespan data sets on the fitting outcomes of two-parameter Gompertz and Weibull mortality models, commonly adopted in aging research.

METHODS

To un-equivocally demonstrate the effect of Gaussian white noises, we simulated lifespans based on Gompertz and Weibull models with added white noises. To gauge the influence of white noise on model fitting, we defined a single index, , for the difference between the maximal log-likelihoods of the Weibull and Gompertz model fittings. We then applied the approach using experimental replicative lifespan data sets for the laboratory BY4741 and BY4742 wildtype reference strains.

RESULTS

We systematically evaluated how Gaussian white noise can influence the maximal likelihood-based comparison of the Gompertz and Weibull models. Our comparative study showed that the Weibull model is generally more tolerant to Gaussian white noise than the Gompertz model. The effect of noise on model fitting is also sensitive to model parameters.

CONCLUSION

Our study shows that Gaussian white noise can influence the fitting of an aging model for yeast replicative lifespans. Given that yeast replicative lifespans are hard to measure and are often pooled from different experiments, our study highlights that interpreting model fitting results should take experimental procedure variation into account, and the best fitting model may not necessarily offer more biological insights.

摘要

未标注

背景/研究背景:经验性寿命数据集通常采用最拟合的衰老数学模型进行研究。在此,我们研究了实验噪声如何影响最佳拟合衰老模型的确定。我们调查了寿命数据集中高斯白噪声对衰老研究中常用的双参数冈珀茨和威布尔死亡率模型拟合结果的影响。

方法

为了明确证明高斯白噪声的影响,我们基于添加了白噪声的冈珀茨和威布尔模型模拟了寿命。为了评估白噪声对模型拟合的影响,我们定义了一个单一指标 ,用于衡量威布尔和冈珀茨模型拟合的最大对数似然之间的差异。然后,我们将该方法应用于实验室BY4741和BY4742野生型参考菌株的实验性重复寿命数据集。

结果

我们系统地评估了高斯白噪声如何影响基于最大似然的冈珀茨和威布尔模型比较。我们的比较研究表明,威布尔模型通常比冈珀茨模型更能容忍高斯白噪声。噪声对模型拟合的影响也对模型参数敏感。

结论

我们的研究表明,高斯白噪声会影响酵母复制寿命衰老模型的拟合。鉴于酵母复制寿命难以测量且通常来自不同实验的汇总,我们强调解释模型拟合结果时应考虑实验过程的差异,并且最佳拟合模型不一定能提供更多生物学见解。

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