AI Article Synopsis

  • - Recent research has focused on using AI to estimate age and disease status from medical images, but age estimation from chest X-rays (CXRs) has not been extensively studied yet.
  • - A deep neural network was trained on over 100,000 CXRs to estimate patient age, and it was applied to two groups of hospitalized patients with heart failure and cardiovascular disease.
  • - The estimated age from CXRs (X-ray age) correlated strongly with actual age and was linked to worse clinical outcomes, indicating that X-ray age can help clinicians assess and manage cardiovascular conditions more effectively.

Article Abstract

Background: In recent years, there has been considerable research on the use of artificial intelligence to estimate age and disease status from medical images. However, age estimation from chest X-ray (CXR) images has not been well studied and the clinical significance of estimated age has not been fully determined.

Methods: To address this, we trained a deep neural network (DNN) model using more than 100,000 CXRs to estimate the patients' age solely from CXRs. We applied our DNN to CXRs of 1562 consecutive hospitalized heart failure patients, and 3586 patients admitted to the intensive care unit with cardiovascular disease.

Results: The DNN's estimated age (X-ray age) showed a strong significant correlation with chronological age on the hold-out test data and independent test data. Elevated X-ray age is associated with worse clinical outcomes (heart failure readmission and all-cause death) for heart failure. Additionally, elevated X-ray age was associated with a worse prognosis in 3586 patients admitted to the intensive care unit with cardiovascular disease.

Conclusions: Our results suggest that X-ray age can serve as a useful indicator of cardiovascular abnormalities, which will help clinicians to predict, prevent and manage cardiovascular diseases.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9734197PMC
http://dx.doi.org/10.1038/s43856-022-00220-6DOI Listing

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