Accelerating Detection of Lung Pathologies with Explainable Ultrasound Image Analysis

被引:89
作者
Born, Jannis [1 ]
Wiedemann, Nina [2 ]
Cossio, Manuel [3 ]
Buhre, Charlotte [4 ]
Brandle, Gabriel [5 ]
Leidermann, Konstantin [6 ]
Goulet, Julie [7 ,8 ]
Aujayeb, Avinash [9 ]
Moor, Michael [1 ,10 ]
Rieck, Bastian [1 ,10 ]
Borgwardt, Karsten [1 ,10 ]
机构
[1] Swiss Fed Inst Technol, Dept Biosyst Sci & Engn, CH-4058 Basel, Switzerland
[2] Swiss Fed Inst Technol, Dept Comp Sci, CH-8092 Zurich, Switzerland
[3] Univ Barcelona, Dept Math & Comp Sci, E-08007 Barcelona, Spain
[4] Brandenburg Med Sch Theodor Fontane, D-16816 Neuruppin, Germany
[5] Hirslanden Clin Grangettes, Pediat Emergency Dept, CH-1224 Geneva, Switzerland
[6] Univ Vienna, Dept Philosophy, A-1010 Vienna, Austria
[7] Tech Univ Munich, Phys Dept T35, D-85747 Garching, Germany
[8] Tech Univ Munich, Bernstein Ctr Computat Neurosci, D-85747 Garching, Germany
[9] Northumbria Specialist Emergency Care Hosp, Cramlington NE23 6NZ, England
[10] SIB Swiss Inst Bioinformat, CH-1015 Lausanne, Switzerland
来源
APPLIED SCIENCES-BASEL | 2021年 / 11卷 / 02期
关键词
computer vision; Convolutional neural network; COVID-19; deep learning; interpretability; pneumonia; Lung imaging; machine learning; medical imaging; ultrasound; supervised learning; COMMUNITY-ACQUIRED PNEUMONIA; CHEST RADIOGRAPHY; DIAGNOSIS; CT; PERFORMANCE;
D O I
10.3390/app11020672
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Care during the COVID-19 pandemic hinges upon the existence of fast, safe, and highly sensitive diagnostic tools. Considering significant practical advantages of lung ultrasound (LUS) over other imaging techniques, but difficulties for doctors in pattern recognition, we aim to leverage machine learning toward guiding diagnosis from LUS. We release the largest publicly available LUS dataset for COVID-19 consisting of 202 videos from four classes (COVID-19, bacterial pneumonia, non-COVID-19 viral pneumonia and healthy controls). On this dataset, we perform an in-depth study of the value of deep learning methods for the differential diagnosis of lung pathologies. We propose a frame-based model that correctly distinguishes COVID-19 LUS videos from healthy and bacterial pneumonia data with a sensitivity of 0.90 +/- 0.08 and a specificity of 0.96 +/- 0.04. To investigate the utility of the proposed method, we employ interpretability methods for the spatio-temporal localization of pulmonary biomarkers, which are deemed useful for human-in-the-loop scenarios in a blinded study with medical experts. Aiming for robustness, we perform uncertainty estimation and demonstrate the model to recognize low-confidence situations which also improves performance. Lastly, we validated our model on an independent test dataset and report promising performance (sensitivity 0.806, specificity 0.962). The provided dataset facilitates the validation of related methodology in the community and the proposed framework might aid the development of a fast, accessible screening method for pulmonary diseases. Dataset and all code are publicly available at: https://github.com/BorgwardtLab/covid19_ultrasound.
引用
收藏
页码:1 / 23
页数:23
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