A Novel Approach to the Identification of Compromised Pulmonary Systems in Smokers by Exploiting Tidal Breathing Patterns

Smoking causes unalterable physiological abnormalities in the pulmonary system. This is emerging as a serious threat worldwide. Unlike spirometry, tidal breathing does not require subjects to undergo forceful breathing maneuvers and is progressing as a new direction towards pulmonary health assessme...

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Main Authors: Raj Rakshit, Anwesha Khasnobish, Arijit Chowdhury, Arijit Sinharay, Arpan Pal, Tapas Chakravarty
Format: Article
Language:English
Published: MDPI AG 2018-04-01
Series:Sensors
Subjects:
Online Access:http://www.mdpi.com/1424-8220/18/5/1322
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spelling doaj-3e86ed08e5894b0e9c568d44f06a561f2020-11-25T00:56:47ZengMDPI AGSensors1424-82202018-04-01185132210.3390/s18051322s18051322A Novel Approach to the Identification of Compromised Pulmonary Systems in Smokers by Exploiting Tidal Breathing PatternsRaj Rakshit0Anwesha Khasnobish1Arijit Chowdhury2Arijit Sinharay3Arpan Pal4Tapas Chakravarty5TCS Research and Innovation, Kolkata-700156, IndiaTCS Research and Innovation, Kolkata-700156, IndiaTCS Research and Innovation, Kolkata-700156, IndiaTCS Research and Innovation, Kolkata-700156, IndiaTCS Research and Innovation, Kolkata-700156, IndiaTCS Research and Innovation, Kolkata-700156, IndiaSmoking causes unalterable physiological abnormalities in the pulmonary system. This is emerging as a serious threat worldwide. Unlike spirometry, tidal breathing does not require subjects to undergo forceful breathing maneuvers and is progressing as a new direction towards pulmonary health assessment. The aim of the paper is to evaluate whether tidal breathing signatures can indicate deteriorating adult lung condition in an otherwise healthy person. If successful, such a system can be used as a pre-screening tool for all people before some of them need to undergo a thorough clinical checkup. This work presents a novel systematic approach to identify compromised pulmonary systems in smokers from acquired tidal breathing patterns. Tidal breathing patterns are acquired during restful breathing of adult participants. Thereafter, physiological attributes are extracted from the acquired tidal breathing signals. Finally, a unique classification approach of locally weighted learning with ridge regression (LWL-ridge) is implemented, which handles the subjective variations in tidal breathing data without performing feature normalization. The LWL-ridge classifier recognized compromised pulmonary systems in smokers with an average classification accuracy of 86.17% along with a sensitivity of 80% and a specificity of 92%. The implemented approach outperformed other variants of LWL as well as other standard classifiers and generated comparable results when applied on an external cohort. This end-to-end automated system is suitable for pre-screening people routinely for early detection of lung ailments as a preventive measure in an infrastructure-agnostic way.http://www.mdpi.com/1424-8220/18/5/1322tidal breathing patternpulmonary ailmentslocally weighted learningridge regression
collection DOAJ
language English
format Article
sources DOAJ
author Raj Rakshit
Anwesha Khasnobish
Arijit Chowdhury
Arijit Sinharay
Arpan Pal
Tapas Chakravarty
spellingShingle Raj Rakshit
Anwesha Khasnobish
Arijit Chowdhury
Arijit Sinharay
Arpan Pal
Tapas Chakravarty
A Novel Approach to the Identification of Compromised Pulmonary Systems in Smokers by Exploiting Tidal Breathing Patterns
Sensors
tidal breathing pattern
pulmonary ailments
locally weighted learning
ridge regression
author_facet Raj Rakshit
Anwesha Khasnobish
Arijit Chowdhury
Arijit Sinharay
Arpan Pal
Tapas Chakravarty
author_sort Raj Rakshit
title A Novel Approach to the Identification of Compromised Pulmonary Systems in Smokers by Exploiting Tidal Breathing Patterns
title_short A Novel Approach to the Identification of Compromised Pulmonary Systems in Smokers by Exploiting Tidal Breathing Patterns
title_full A Novel Approach to the Identification of Compromised Pulmonary Systems in Smokers by Exploiting Tidal Breathing Patterns
title_fullStr A Novel Approach to the Identification of Compromised Pulmonary Systems in Smokers by Exploiting Tidal Breathing Patterns
title_full_unstemmed A Novel Approach to the Identification of Compromised Pulmonary Systems in Smokers by Exploiting Tidal Breathing Patterns
title_sort novel approach to the identification of compromised pulmonary systems in smokers by exploiting tidal breathing patterns
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2018-04-01
description Smoking causes unalterable physiological abnormalities in the pulmonary system. This is emerging as a serious threat worldwide. Unlike spirometry, tidal breathing does not require subjects to undergo forceful breathing maneuvers and is progressing as a new direction towards pulmonary health assessment. The aim of the paper is to evaluate whether tidal breathing signatures can indicate deteriorating adult lung condition in an otherwise healthy person. If successful, such a system can be used as a pre-screening tool for all people before some of them need to undergo a thorough clinical checkup. This work presents a novel systematic approach to identify compromised pulmonary systems in smokers from acquired tidal breathing patterns. Tidal breathing patterns are acquired during restful breathing of adult participants. Thereafter, physiological attributes are extracted from the acquired tidal breathing signals. Finally, a unique classification approach of locally weighted learning with ridge regression (LWL-ridge) is implemented, which handles the subjective variations in tidal breathing data without performing feature normalization. The LWL-ridge classifier recognized compromised pulmonary systems in smokers with an average classification accuracy of 86.17% along with a sensitivity of 80% and a specificity of 92%. The implemented approach outperformed other variants of LWL as well as other standard classifiers and generated comparable results when applied on an external cohort. This end-to-end automated system is suitable for pre-screening people routinely for early detection of lung ailments as a preventive measure in an infrastructure-agnostic way.
topic tidal breathing pattern
pulmonary ailments
locally weighted learning
ridge regression
url http://www.mdpi.com/1424-8220/18/5/1322
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