Prediction of the severity of obstructive sleep apnea by anthropometric features via support vector machine
To develop an applicable prediction for obstructive sleep apnea (OSA) is still a challenge in clinical practice. We apply a modern machine learning method, the support vector machine to establish a predicting model for the severity of OSA. The support vector machine was applied to build up a predict...
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Published in | PloS one Vol. 12; no. 5; p. e0176991 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
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Public Library of Science
04.05.2017
Public Library of Science (PLoS) |
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ISSN | 1932-6203 1932-6203 |
DOI | 10.1371/journal.pone.0176991 |
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Abstract | To develop an applicable prediction for obstructive sleep apnea (OSA) is still a challenge in clinical practice. We apply a modern machine learning method, the support vector machine to establish a predicting model for the severity of OSA. The support vector machine was applied to build up a prediction model based on three anthropometric features (neck circumference, waist circumference, and body mass index) and age on the first database. The established model was then valided independently on the second database. The anthropometric features and age were combined to generate powerful predictors for OSA. Following the common practice, we predict if a subject has the apnea-hypopnea index greater then 15 or not as well as 30 or not. Dividing by genders and age, for the AHI threhosld 15 (respectively 30), the cross validation and testing accuracy for the prediction were 85.3% and 76.7% (respectively 83.7% and 75.5%) in young female, while the negative likelihood ratio for the AHI threhosld 15 (respectively 30) for the cross validation and testing were 0.2 and 0.32 (respectively 0.06 and 0.1) in young female. The more accurate results with lower negative likelihood ratio in the younger patients, especially the female subgroup, reflect the potential of the proposed model for the screening purpose and the importance of approaching by different genders and the effects of aging. |
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AbstractList | To develop an applicable prediction for obstructive sleep apnea (OSA) is still a challenge in clinical practice. We apply a modern machine learning method, the support vector machine to establish a predicting model for the severity of OSA. The support vector machine was applied to build up a prediction model based on three anthropometric features (neck circumference, waist circumference, and body mass index) and age on the first database. The established model was then valided independently on the second database. The anthropometric features and age were combined to generate powerful predictors for OSA. Following the common practice, we predict if a subject has the apnea-hypopnea index greater then 15 or not as well as 30 or not. Dividing by genders and age, for the AHI threhosld 15 (respectively 30), the cross validation and testing accuracy for the prediction were 85.3% and 76.7% (respectively 83.7% and 75.5%) in young female, while the negative likelihood ratio for the AHI threhosld 15 (respectively 30) for the cross validation and testing were 0.2 and 0.32 (respectively 0.06 and 0.1) in young female. The more accurate results with lower negative likelihood ratio in the younger patients, especially the female subgroup, reflect the potential of the proposed model for the screening purpose and the importance of approaching by different genders and the effects of aging. To develop an applicable prediction for obstructive sleep apnea (OSA) is still a challenge in clinical practice. We apply a modern machine learning method, the support vector machine to establish a predicting model for the severity of OSA. The support vector machine was applied to build up a prediction model based on three anthropometric features (neck circumference, waist circumference, and body mass index) and age on the first database. The established model was then valided independently on the second database. The anthropometric features and age were combined to generate powerful predictors for OSA. Following the common practice, we predict if a subject has the apnea-hypopnea index greater then 15 or not as well as 30 or not. Dividing by genders and age, for the AHI threhosld 15 (respectively 30), the cross validation and testing accuracy for the prediction were 85.3% and 76.7% (respectively 83.7% and 75.5%) in young female, while the negative likelihood ratio for the AHI threhosld 15 (respectively 30) for the cross validation and testing were 0.2 and 0.32 (respectively 0.06 and 0.1) in young female. The more accurate results with lower negative likelihood ratio in the younger patients, especially the female subgroup, reflect the potential of the proposed model for the screening purpose and the importance of approaching by different genders and the effects of aging.To develop an applicable prediction for obstructive sleep apnea (OSA) is still a challenge in clinical practice. We apply a modern machine learning method, the support vector machine to establish a predicting model for the severity of OSA. The support vector machine was applied to build up a prediction model based on three anthropometric features (neck circumference, waist circumference, and body mass index) and age on the first database. The established model was then valided independently on the second database. The anthropometric features and age were combined to generate powerful predictors for OSA. Following the common practice, we predict if a subject has the apnea-hypopnea index greater then 15 or not as well as 30 or not. Dividing by genders and age, for the AHI threhosld 15 (respectively 30), the cross validation and testing accuracy for the prediction were 85.3% and 76.7% (respectively 83.7% and 75.5%) in young female, while the negative likelihood ratio for the AHI threhosld 15 (respectively 30) for the cross validation and testing were 0.2 and 0.32 (respectively 0.06 and 0.1) in young female. The more accurate results with lower negative likelihood ratio in the younger patients, especially the female subgroup, reflect the potential of the proposed model for the screening purpose and the importance of approaching by different genders and the effects of aging. |
Audience | Academic |
Author | Lo, Yu-Lun Liu, Wen-Te Wu, Dean Juang, Jer-Nan Wu, Hau-tieng Wisniewski, Adam Lee, Hsin-Chien |
AuthorAffiliation | 7 Department of Mathematics, University of Toronto, Toronto, ON, Canada 10 Department of Neurology, Shuang Ho Hospital, Taipei Medical University, New Taipei City, Taiwan 11 Department of Neurology, School of Medicine, College of Medicine, Taipei Medical University, Taipei, Taiwan 12 Department of Thoracic Medicine, Healthcare Center, Chang Gung Memorial Hospital, School of Medicine, Chang Gung University, Taoyuan, Taiwan 4 Department of Engineering Science, National Cheng Kung University, Tainan, Taiwan 1 Division of Pulmonary Medicine, Department of Internal Medicine, Shuang Ho Hospital, Taipei Medical University, New Taipei City, Taiwan Tianjin University, CHINA 9 Department of Psychiatry and Medical Humanities, School of Medicine, College of Medicine, Taipei Medical University, Taipei, Taiwan 2 Department of Internal Medicine, School of Medicine, College of Medicine, Taipei Medical University, Taipei, Taiwan 5 Sleep Science Center, Taipei Medical University Hospital, Taipei Medical Universi |
AuthorAffiliation_xml | – name: 11 Department of Neurology, School of Medicine, College of Medicine, Taipei Medical University, Taipei, Taiwan – name: 1 Division of Pulmonary Medicine, Department of Internal Medicine, Shuang Ho Hospital, Taipei Medical University, New Taipei City, Taiwan – name: 10 Department of Neurology, Shuang Ho Hospital, Taipei Medical University, New Taipei City, Taiwan – name: 12 Department of Thoracic Medicine, Healthcare Center, Chang Gung Memorial Hospital, School of Medicine, Chang Gung University, Taoyuan, Taiwan – name: 5 Sleep Science Center, Taipei Medical University Hospital, Taipei Medical University, Taipei, Taiwan – name: 9 Department of Psychiatry and Medical Humanities, School of Medicine, College of Medicine, Taipei Medical University, Taipei, Taiwan – name: 6 Sleep Center, Shuang Ho Hospital, Taipei Medical University, New Taipei City, Taiwan – name: 3 School of Respiratory Therapy, College of Medicine, Taipei Medical University, Taipei, Taiwan – name: 8 Department of Psychiatry, Shuang Ho Hospital, Taipei Medical University, New Taipei City, Taiwan – name: 2 Department of Internal Medicine, School of Medicine, College of Medicine, Taipei Medical University, Taipei, Taiwan – name: Tianjin University, CHINA – name: 4 Department of Engineering Science, National Cheng Kung University, Tainan, Taiwan – name: 7 Department of Mathematics, University of Toronto, Toronto, ON, Canada |
Author_xml | – sequence: 1 givenname: Wen-Te surname: Liu fullname: Liu, Wen-Te – sequence: 2 givenname: Hau-tieng surname: Wu fullname: Wu, Hau-tieng – sequence: 3 givenname: Jer-Nan surname: Juang fullname: Juang, Jer-Nan – sequence: 4 givenname: Adam surname: Wisniewski fullname: Wisniewski, Adam – sequence: 5 givenname: Hsin-Chien surname: Lee fullname: Lee, Hsin-Chien – sequence: 6 givenname: Dean surname: Wu fullname: Wu, Dean – sequence: 7 givenname: Yu-Lun surname: Lo fullname: Lo, Yu-Lun |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/28472141$$D View this record in MEDLINE/PubMed |
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CitedBy_id | crossref_primary_10_1093_sleep_zsae317 crossref_primary_10_1186_s12871_023_02075_3 crossref_primary_10_4103_jrms_JRMS_653_18 crossref_primary_10_1093_sleep_zsz295 crossref_primary_10_1186_s12911_023_02331_z crossref_primary_10_1080_17538157_2021_2007930 crossref_primary_10_1164_rccm_202304_0767OC crossref_primary_10_1088_1361_6579_aad5fe crossref_primary_10_1177_20552076231152751 crossref_primary_10_3390_diagnostics11040612 crossref_primary_10_5664_jcsm_8462 crossref_primary_10_1109_TFUZZ_2022_3222033 crossref_primary_10_5664_jcsm_10006 crossref_primary_10_5005_jp_journals_11007_0111 crossref_primary_10_1038_s41598_024_70647_5 crossref_primary_10_1136_bmjopen_2020_048482 crossref_primary_10_3389_fphys_2018_00723 crossref_primary_10_3390_healthcare13020181 crossref_primary_10_1111_jsr_13487 crossref_primary_10_13078_jsm_200022 crossref_primary_10_1152_japplphysiol_01033_2018 crossref_primary_10_3389_fdata_2024_1353469 crossref_primary_10_3390_bdcc4040025 crossref_primary_10_2196_39452 crossref_primary_10_5664_jcsm_10532 |
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Notes | ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 14 content type line 23 Conceptualization: WTL HTW YLL.Data curation: WTL HTW YLL.Formal analysis: HTW JNJ AW.Investigation: WTL HTW JNJ AW YLL.Methodology: HTW YLL.Project administration: WTL HTW YLL.Resources: WTL HCL DW.Supervision: YLL.Visualization: WTL HTW YLL.Writing – original draft: WTL HTW YLL.Writing – review & editing: WTL HTW YLL. Co-first authors Competing Interests: The authors have declared that no competing interests exist. |
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Snippet | To develop an applicable prediction for obstructive sleep apnea (OSA) is still a challenge in clinical practice. We apply a modern machine learning method, the... |
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SubjectTerms | Adipose tissue Adult Age Anthropometry Apnea Biology and Life Sciences Body fat Body mass Body mass index Body measurements Body size Computer and Information Sciences Disasters Engineering Fatigue Female Females Gas exchange Gender Gender differences Globalization Health aspects Health care Hormone replacement therapy Hospitals Humans Insomnia Internal medicine Laboratories Learning algorithms Likelihood ratio Machine learning Male Medicine Medicine and Health Sciences Menopause Middle Aged Minority & ethnic groups Models, Theoretical Neck Patients Physical Sciences Prediction models Predictions Public health Questionnaires Research and Analysis Methods Resonance Science Severity of Illness Index Sleep Sleep apnea Sleep Apnea, Obstructive - physiopathology Sleep disorders Socioeconomics Specifications Studies Subgroups Support Vector Machine Support vector machines Teaching models Ventilation Womens health |
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Title | Prediction of the severity of obstructive sleep apnea by anthropometric features via support vector machine |
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