Advance Warning Methodologies for COVID-19 Using Chest X-Ray Images

Mete Ahishali1, Aysen Degerli1, Mehmet Yamac1

  • 1Faculty of Information Technology and Communication SciencesTampere University 33720 Tampere Finland.

IEEE Access : Practical Innovations, Open Solutions
|February 15, 2023
PubMed

Insights

Machine learning models show promise for early COVID-19 detection in X-rays. A new Convolutional Support Estimator Network (CSEN) achieved over 97% sensitivity on early-stage pneumonia.

Area of Science:

  • Medical Imaging
  • Artificial Intelligence
  • Computational Biology

Background:

  • Coronavirus disease 2019 (COVID-19) emerged in December 2019, creating an urgent need for early diagnostic tools.
  • Early-stage COVID-19 detection from chest X-rays is challenging as infection signs are often subtle.

Purpose of the Study:

  • To evaluate state-of-the-art Machine Learning (ML) techniques for early COVID-19 detection using chest X-ray images.
  • To propose and assess a novel compact classifier, Convolutional Support Estimator Network (CSEN), for scarce-data classification tasks.
  • To introduce the Early-QaTa-COV19 dataset for benchmarking early-stage COVID-19 pneumonia detection.

Main Methods:

  • Evaluation of compact classifiers and deep learning approaches for COVID-19 detection.
  • Implementation and testing of the Convolutional Support Estimator Network (CSEN) on the Early-QaTa-COV19 dataset.
  • Comparison of CSEN performance against other deep learning models like DenseNet-121.

Main Results:

  • The CSEN model achieved high performance with over 97% sensitivity and 95.5% specificity.
  • DenseNet-121 demonstrated strong results among deep networks, yielding 95% sensitivity and 99.74% specificity.
  • The Early-QaTa-COV19 dataset comprises 1065 early-stage COVID-19 pneumonia samples and 12544 control samples.

Conclusions:

  • Machine learning, particularly CSEN, shows significant potential for the early detection of COVID-19 from chest X-rays.
  • The developed Early-QaTa-COV19 dataset provides a valuable resource for training and evaluating early-stage COVID-19 detection models.
  • Accurate early diagnosis systems are crucial for managing the global health impact of COVID-19.

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