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1000 Titel
  • Deep learning-based segmentation of the lung in MR-images acquired by a stack-of-spirals trajectory at ultra-short echo-times
1000 Autor/in
  1. Weng, Andreas M. |
  2. Heidenreich, Julius F. |
  3. Metz, Corona |
  4. Veldhoen, Simon |
  5. Bley, Thorsten A. |
  6. Wech, Tobias |
1000 Erscheinungsjahr 2021
1000 Publikationstyp
  1. Artikel |
1000 Online veröffentlicht
  • 2021-05-08
1000 Erschienen in
1000 Quellenangabe
  • 21(1):79
1000 Copyrightjahr
  • 2021
1000 Lizenz
1000 Verlagsversion
  • https://doi.org/10.1186/s12880-021-00608-1 |
  • https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8106126/ |
1000 Publikationsstatus
1000 Sprache der Publikation
1000 Abstract/Summary
  • Background!#!Functional lung MRI techniques are usually associated with time-consuming post-processing, where manual lung segmentation represents the most cumbersome part. The aim of this study was to investigate whether deep learning-based segmentation of lung images which were scanned by a fast UTE sequence exploiting the stack-of-spirals trajectory can provide sufficiently good accuracy for the calculation of functional parameters.!##!Methods!#!In this study, lung images were acquired in 20 patients suffering from cystic fibrosis (CF) and 33 healthy volunteers, by a fast UTE sequence with a stack-of-spirals trajectory and a minimum echo-time of 0.05 ms. A convolutional neural network was then trained for semantic lung segmentation using 17,713 2D coronal slices, each paired with a label obtained from manual segmentation. Subsequently, the network was applied to 4920 independent 2D test images and results were compared to a manual segmentation using the Sørensen-Dice similarity coefficient (DSC) and the Hausdorff distance (HD). Obtained lung volumes and fractional ventilation values calculated from both segmentations were compared using Pearson's correlation coefficient and Bland Altman analysis. To investigate generalizability to patients outside the CF collective, in particular to those exhibiting larger consolidations inside the lung, the network was additionally applied to UTE images from four patients with pneumonia and one with lung cancer.!##!Results!#!The overall DSC for lung tissue was 0.967 ± 0.076 (mean ± standard deviation) and HD was 4.1 ± 4.4 mm. Lung volumes derived from manual and deep learning based segmentations as well as values for fractional ventilation exhibited a high overall correlation (Pearson's correlation coefficent = 0.99 and 1.00). For the additional cohort with unseen pathologies / consolidations, mean DSC was 0.930 ± 0.083, HD = 12.9 ± 16.2 mm and the mean difference in lung volume was 0.032 ± 0.048 L.!##!Conclusions!#!Deep learning-based image segmentation in stack-of-spirals based lung MRI allows for accurate estimation of lung volumes and fractional ventilation values and promises to replace the time-consuming step of manual image segmentation in the future.
1000 Sacherschließung
lokal Lung Neoplasms/diagnostic imaging [MeSH]
lokal Deep Learning [MeSH]
lokal Humans [MeSH]
lokal MRI
lokal Lung/diagnostic imaging [MeSH]
lokal Lung
lokal Lung/physiology [MeSH]
lokal Neural Networks, Computer [MeSH]
lokal Respiration [MeSH]
lokal Image segmentation
lokal Pneumonia/diagnostic imaging [MeSH]
lokal Research
lokal Cystic Fibrosis/physiopathology [MeSH]
lokal Case-Control Studies [MeSH]
lokal Magnetic Resonance Imaging/methods [MeSH]
lokal Cystic Fibrosis/diagnostic imaging [MeSH]
lokal Deep learning
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