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Published in: BMC Pulmonary Medicine 1/2019

Open Access 01-12-2019 | Sleep Apnea | Research article

Development and validation of a simple-to-use clinical nomogram for predicting obstructive sleep apnea

Authors: Huajun Xu, Xiaolong Zhao, Yue Shi, Xinyi Li, Yingjun Qian, Jianyin Zou, Hongliang Yi, Hengye Huang, Jian Guan, Shankai Yin

Published in: BMC Pulmonary Medicine | Issue 1/2019

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Abstract

Background

The high cost and low availability of polysomnography (PSG) limits the timely diagnosis of OSA. Herein, we developed and validated a simple-to-use nomogram for predicting OSA.

Methods

We collected and analyzed the cross-sectional data of 4162 participants with suspected OSA, seen at our sleep center between 2007 and 2016. Demographic, biochemical and anthropometric data, as well as sleep parameters were obtained. A least absolute shrinkage and selection operator (LASSO) regression model was used to reduce data dimensionality, select factors, and construct the nomogram. The performance of the nomogram was assessed using calibration and discrimination. Internal validation was also performed.

Results

The LASSO regression analysis identified age, sex, body mass index, neck circumference, waist circumference, glucose, insulin, and apolipoprotein B as significant predictive factors of OSA. Our nomogram model showed good discrimination and calibration in terms of predicting OSA, and had a C-index value of 0.839 according to the internal validation. Discrimination and calibration in the validation group was also good (C-index = 0.820). The nomogram identified individuals at risk for OSA with an area under the curve (AUC) of 0.84 [95% confidence interval (CI), 0.83–0.86].

Conclusions

Our simple-to-use nomogram is not intended to replace standard PSG, but will help physicians better make decisions on PSG arrangement for the patients referred to sleep center.
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Metadata
Title
Development and validation of a simple-to-use clinical nomogram for predicting obstructive sleep apnea
Authors
Huajun Xu
Xiaolong Zhao
Yue Shi
Xinyi Li
Yingjun Qian
Jianyin Zou
Hongliang Yi
Hengye Huang
Jian Guan
Shankai Yin
Publication date
01-12-2019
Publisher
BioMed Central
Published in
BMC Pulmonary Medicine / Issue 1/2019
Electronic ISSN: 1471-2466
DOI
https://doi.org/10.1186/s12890-019-0782-1

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