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一个用于将分段(逐段)线性模型与广义加性混合模型(GAMLSS)进行比较的精细肺量计数据集。

A refined spirometry dataset for comparing segmented (piecewise) linear models to that of GAMLSS.

作者信息

Zavorsky Gerald Stanley

机构信息

Department of Physiology and Membrane Biology, Tupper Hall, Rm 4327, 1275 Med Sciences Drive, University of California, Davis, CA 95616, United States.

出版信息

Data Brief. 2024 Oct 23;57:111062. doi: 10.1016/j.dib.2024.111062. eCollection 2024 Dec.

Abstract

Generalized Additive Models for Location, Scale, and Shape (GAMLSS) are widely used for developing spirometric reference equations but are often complex, requiring additional spline tables. This study explores the potential of Segmented (piecewise) Linear Regression as an alternative, comparing its predictive accuracy to GAMLSS and examining the agreement between the two methods. Spirometry data from nearly 16,600 patients, deemed Grade "A" and "B" acceptable from the NHANES 2007-2012 dataset, was analyzed. The dataset includes both nominal and scalar variables. Reference equations for forced expiratory volume in 1 s (FEV), forced vital capacity (FVC), and the ratio (FEV/FVC) were generated using GAMLSS (FEV, FVC, FEV/FVC), Segmented Linear Regression (FEV, FVC) and multiple linear regression (FEV/FVC). -fold cross-validation was employed to compare prediction accuracy, using root-mean-square error (RMSE) and correlation coefficients. Agreement in classifying spirometric patterns (i.e. airway obstruction, restrictive spirometry pattern, mixed obstructive and restrictive disorder) was evaluated with the kappa statistic. This study uniquely compares the models by incorporating the lower limit of normal (LLN) using fitted z-scores of -1.645 or -1.96. The dataset is publicly available in SPSS (.sav) and .csv formats through the Mendeley Data repository.

摘要

位置、尺度和形状的广义相加模型(GAMLSS)被广泛用于建立肺功能参考方程,但通常很复杂,需要额外的样条表。本研究探讨分段线性回归作为一种替代方法的潜力,将其预测准确性与GAMLSS进行比较,并检验两种方法之间的一致性。分析了来自2007 - 2012年美国国家健康与营养检查调查(NHANES)数据集的近16,600名患者的肺功能数据,这些数据被判定为“A”级和“B”级可接受。该数据集包括名义变量和标量变量。使用GAMLSS(第1秒用力呼气量(FEV)、用力肺活量(FVC)、FEV/FVC)、分段线性回归(FEV、FVC)和多元线性回归(FEV/FVC)生成FEV、FVC和比值(FEV/FVC)的参考方程。采用 - 折交叉验证来比较预测准确性,使用均方根误差(RMSE)和相关系数。用kappa统计量评估肺功能模式分类(即气道阻塞、限制性肺功能模式、混合性阻塞和限制性疾病)的一致性。本研究通过纳入使用拟合z分数 - 1.645或 - 1.96的正常下限(LLN)来独特地比较模型。该数据集通过Mendeley Data存储库以SPSS(.sav)和.csv格式公开可用。

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