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Multi-centre benchmarking of deep learning models for COVID-19 detection in chest x-rays.

Rachael HarknessAlejandro F FrangiKieran ZuckerNishant Ravikumar
Published in: Frontiers in radiology (2024)
This comprehensive benchmarking study examines the pitfalls in current practices that have led to impractical model development. Key findings highlight the need for clinician involvement at all stages of model development, from data curation and label definition, to model evaluation, to ensure that all clinical factors and disease features are appropriately considered during model design. This is imperative to ensure automated approaches developed for disease detection are fit-for-purpose in a clinical setting.
Keyphrases
  • deep learning
  • coronavirus disease
  • healthcare
  • sars cov
  • real time pcr
  • single cell