Back

Machine Diagnosis of Chronic Obstructive Pulmonary Disease using a Novel Fast-Response Capnometer

Talker, L.; Neville, D.; Wiffen, L.; Selim, A.; Haines, M.; Carter, J. C.; Broomfield, H.; Lim, R. H.; Lambert, G.; BRS Study team, ; Weiss, S. T.; Hayward, G.; Brown, T.; Chauhan, A.; Patel, A. X.

2023-02-24 respiratory medicine
10.1101/2023.02.22.23286241 medRxiv
Show abstract

BackgroundAlthough currently most widely used in mechanical ventilation and cardiopulmonary resuscitation, features of the carbon dioxide waveform produced through capnometry have been shown to correlate with V/Q mismatch, dead space volume, type of breathing pattern, and small airway obstruction. This study applied feature engineering and machine learning techniques to capnography data collected by the N-Tidal device across four clinical studies to build a classifier that could distinguish CO2 recordings (capnograms) of patients with COPD from those without COPD. MethodsCapnography data from four longitudinal observational studies (CBRS, GBRS, CBRS2 and ABRS) was analysed from 295 patients, generating a total of 88,186 capnograms. CO2 sensor data was processed using Cambridge Respiratory Innovations regulated cloud platform, performing real-time geometric analysis on CO2 waveforms to generate 82 physiologic features per capnogram. These features were used to train machine learning classifiers to discriminate COPD from non-COPD (a group that included healthy participants and those with other cardiorespiratory conditions); model performance was validated on independent test sets. ResultsThe best machine learning model (XGBoost) performance provided a class-balanced AUROC of 0{middle dot}968 {+/-} 0{middle dot}017 and a positive predictive value (PPV) of 0{middle dot}911 {+/-} 0{middle dot}028 for a diagnosis of COPD. The waveform features that are most important for driving classification are related to the alpha angle and expiratory plateau regions. These features correlated with spirometry readings, supporting their proposed properties as markers of COPD. ConclusionThe N-Tidal device can be used to accurately diagnose COPD in near-real-time, lending support to future use in a clinical setting. FundingNIHR (i4i grant), Innovate UK, SBRI Healthcare and Pfizer OpenAir.

Matching journals

The top 5 journals account for 50% of the predicted probability mass.

50% of probability mass above

"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.