Literature DB >> 35146436

Improved Detection of Chronic Obstructive Pulmonary Disease at Chest CT Using the Mean Curvature of Isophotes.

Peter Savadjiev1, Benoit Gallix1, Morteza Rezanejad1, Sahir Bhatnagar1, Alexandre Semionov1, Kaleem Siddiqi1, Reza Forghani1, Caroline Reinhold1, David H Eidelman1, Ronald J Dandurand1.   

Abstract

PURPOSE: To determine if the mean curvature of isophotes (MCI), a standard computer vision technique, can be used to improve detection of chronic obstructive pulmonary disease (COPD) at chest CT.
MATERIALS AND METHODS: In this retrospective study, chest CT scans were obtained in 243 patients with COPD and 31 controls (among all 274: 151 women [mean age, 70 years; range, 44-90 years] and 123 men [mean age, 71 years; range, 29-90 years]) from two community practices between 2006 and 2019. A convolutional neural network (CNN) architecture was trained on either CT images or CT images transformed through the MCI algorithm. Separately, a linear classification based on a single feature derived from the MCI computation (called hMCI1) was also evaluated. All three models were evaluated with cross-validation, using precision-macro and recall-macro metrics, that is, the mean of per-class precision and recall values, respectively (the latter being equivalent to balanced accuracy).
RESULTS: Linear classification based on hMCI1 resulted in a higher recall-macro relative to the CNN trained and applied on CT images (0.85 [95% CI: 0.84, 0.86] vs 0.77 [95% CI: 0.75, 0.79]) but with a similar reduction in precision-macro (0.66 [95% CI: 0.65, 0.67] vs 0.77 [95% CI: 0.75, 0.79]). The CNN model trained and applied on MCI-transformed images had a higher recall-macro (0.85 [95% CI: 0.83, 0.87] vs 0.77 [95% CI: 0.75, 0.79]) and precision-macro (0.85 [95% CI: 0.83, 0.87] vs 0.77 [95% CI: 0.75, 0.79]) relative to the CNN trained and applied on CT images.
CONCLUSION: The MCI algorithm may be valuable toward the automated detection and diagnosis of COPD on chest CT scans as part of a CNN-based pipeline or with stand-alone features.Keywords: Chronic Obstructive Pulmonary Disease, Quantification, Lung, CT Supplemental material is available for this article. See also the invited commentary by Vannier in this issue.© RSNA, 2021. 2022 by the Radiological Society of North America, Inc.

Entities:  

Keywords:  CT; Chronic Obstructive Pulmonary Disease; Lung; Quantification

Year:  2021        PMID: 35146436      PMCID: PMC8823461          DOI: 10.1148/ryai.210105

Source DB:  PubMed          Journal:  Radiol Artif Intell        ISSN: 2638-6100


  20 in total

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3.  Clinical Significance of Symptoms in Smokers with Preserved Pulmonary Function.

Authors:  Prescott G Woodruff; R Graham Barr; Eugene Bleecker; Stephanie A Christenson; David Couper; Jeffrey L Curtis; Natalia A Gouskova; Nadia N Hansel; Eric A Hoffman; Richard E Kanner; Eric Kleerup; Stephen C Lazarus; Fernando J Martinez; Robert Paine; Stephen Rennard; Donald P Tashkin; MeiLan K Han
Journal:  N Engl J Med       Date:  2016-05-12       Impact factor: 91.245

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Authors:  Jean Bourbeau; Wan C Tan; Andrea Benedetti; Shawn D Aaron; Kenneth R Chapman; Harvey O Coxson; Robert Cowie; Mark Fitzgerald; Roger Goldstein; Paul Hernandez; Jonathon Leipsic; Francois Maltais; Darcy Marciniuk; Denis O'Donnell; Don D Sin
Journal:  COPD       Date:  2012-03-20       Impact factor: 2.409

5.  Towards large-scale case-finding: training and validation of residual networks for detection of chronic obstructive pulmonary disease using low-dose CT.

Authors:  Lisa Y W Tang; Harvey O Coxson; Stephen Lam; Jonathon Leipsic; Roger C Tam; Don D Sin
Journal:  Lancet Digit Health       Date:  2020-04-21

6.  Disease Staging and Prognosis in Smokers Using Deep Learning in Chest Computed Tomography.

Authors:  Germán González; Samuel Y Ash; Gonzalo Vegas-Sánchez-Ferrero; Jorge Onieva Onieva; Farbod N Rahaghi; James C Ross; Alejandro Díaz; Raúl San José Estépar; George R Washko
Journal:  Am J Respir Crit Care Med       Date:  2018-01-15       Impact factor: 21.405

7.  Total Airway Count on Computed Tomography and the Risk of Chronic Obstructive Pulmonary Disease Progression. Findings from a Population-based Study.

Authors:  Miranda Kirby; Naoya Tanabe; Wan C Tan; Guohai Zhou; Ma'en Obeidat; Cameron J Hague; Jonathon Leipsic; Jean Bourbeau; Don D Sin; James C Hogg; Harvey O Coxson
Journal:  Am J Respir Crit Care Med       Date:  2018-01-01       Impact factor: 21.405

8.  Characterisation of COPD heterogeneity in the ECLIPSE cohort.

Authors:  Alvar Agusti; Peter M A Calverley; Bartolome Celli; Harvey O Coxson; Lisa D Edwards; David A Lomas; William MacNee; Bruce E Miller; Steve Rennard; Edwin K Silverman; Ruth Tal-Singer; Emiel Wouters; Julie C Yates; Jørgen Vestbo
Journal:  Respir Res       Date:  2010-09-10

Review 9.  What's in a name? That which we call IPF, by any other name would act the same.

Authors:  Athol U Wells; Kevin K Brown; Kevin R Flaherty; Martin Kolb; Victor J Thannickal
Journal:  Eur Respir J       Date:  2018-05-17       Impact factor: 33.795

10.  From GOLD 0 to Pre-COPD.

Authors:  MeiLan K Han; Alvar Agusti; Bartolome R Celli; Gerard J Criner; David M G Halpin; Nicolas Roche; Alberto Papi; Robert A Stockley; Jadwiga Wedzicha; Claus F Vogelmeier
Journal:  Am J Respir Crit Care Med       Date:  2021-02-15       Impact factor: 21.405

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  1 in total

1.  Isophotes, Scale Space, and Invariants in Lung CT for COPD Diagnosis.

Authors:  Michael W Vannier
Journal:  Radiol Artif Intell       Date:  2022-01-19
  1 in total

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