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Pathological changes or technical artefacts? The problem of the heterogenous databases in COVID-19 CXR image analysis

  • POLCOVID Study Group
  • Silesian University of Technology
  • Medical University of Silesia in Katowice
  • Voivodship Specialist Hospital
  • Silesian Hospital
  • MEGREZ Hospital
  • Czerniakowski Hospital
  • Jagiellonian University Medical College
  • Kujawsko-Pomorskie Pulmonology Center
  • Medical University of Warsaw
  • Nicolaus Copernicus University in Toruń
  • Medical University of Białystok
  • Wrocław Medical University
  • Central Clinical Hospital of the Ministry of Internal Affairs and Administration
  • Maria Sklodowska-Curie Institute of Oncology
  • Medical University of Gdańsk
  • Yale University

Research output: Contribution to journalArticlepeer-review

7 Citations (Scopus)

Abstract

Background: When the COVID-19 pandemic commenced in 2020, scientists assisted medical specialists with diagnostic algorithm development. One scientific research area related to COVID-19 diagnosis was medical imaging and its potential to support molecular tests. Unfortunately, several systems reported high accuracy in development but did not fare well in clinical application. The reason was poor generalization, a long-standing issue in AI development. Researchers found many causes of this issue and decided to refer to them as confounders, meaning a set of artefacts and methodological errors associated with the method. We aim to contribute to this steed by highlighting an undiscussed confounder related to image resolution. Methods: 20 216 chest X-ray images (CXR) from worldwide centres were analyzed. The CXRs were bijectively projected into the 2D domain by performing Uniform Manifold Approximation and Projection (UMAP) embedding on the radiomic features (rUMAP) or CNN-based neural features (nUMAP) from the pre-last layer of the pre-trained classification neural network. Additional 44 339 thorax CXRs were used for validation. The comprehensive analysis of the multimodality of the density distribution in rUMAP/nUMAP domains and its relation to the original image properties was used to identify the main confounders. Results: nUMAP revealed a hidden bias of neural networks towards the image resolution, which the regular up-sampling procedure cannot compensate for. The issue appears regardless of the network architecture and is not observed in a high-resolution dataset. The impact of the resolution heterogeneity can be partially diminished by applying advanced deep-learning-based super-resolution networks. Conclusions: rUMAP and nUMAP are great tools for image homogeneity analysis and bias discovery, as demonstrated by applying them to COVID-19 image data. Nonetheless, nUMAP could be applied to any type of data for which a deep neural network could be constructed. Advanced image super-resolution solutions are needed to reduce the impact of the resolution diversity on the classification network decision.

Original languageEnglish
Article number107684
JournalComputer Methods and Programs in Biomedicine
Volume240
DOIs
Publication statusPublished - Oct 2023

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Artefacts
  • Bias
  • COVID-19
  • CXR
  • Computer Aided Diagnosis
  • Confounders
  • Explainability
  • Generalization
  • Trustworthiness

ASJC Scopus subject areas

  • Software
  • Computer Science Applications
  • Health Informatics

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