Early Experiences with Crowdsourcing Airway Annotations in Chest CT
June 07, 2017 ยท Declared Dead ยท ๐ LABELS/DLMIA@MICCAI
"No code URL or promise found in abstract"
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Authors
Veronika Cheplygina, Adria Perez-Rovira, Wieying Kuo, Harm A. W. M. Tiddens, Marleen de Bruijne
arXiv ID
1706.02055
Category
cs.CV: Computer Vision
Citations
35
Venue
LABELS/DLMIA@MICCAI
Last Checked
3 months ago
Abstract
Measuring airways in chest computed tomography (CT) images is important for characterizing diseases such as cystic fibrosis, yet very time-consuming to perform manually. Machine learning algorithms offer an alternative, but need large sets of annotated data to perform well. We investigate whether crowdsourcing can be used to gather airway annotations which can serve directly for measuring the airways, or as training data for the algorithms. We generate image slices at known locations of airways and request untrained crowd workers to outline the airway lumen and airway wall. Our results show that the workers are able to interpret the images, but that the instructions are too complex, leading to many unusable annotations. After excluding unusable annotations, quantitative results show medium to high correlations with expert measurements of the airways. Based on this positive experience, we describe a number of further research directions and provide insight into the challenges of crowdsourcing in medical images from the perspective of first-time users.
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