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Applications of Artificial Intelligence in Constrictive Pericarditis: A Short Literature Review

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Abstract

Purpose of Review

Constrictive pericarditis (CP) is a potentially curable condition characterized by the thickening, scarring, and calcification of the pericardium. A comprehensive approach, including clinical evaluations and imaging techniques such as echocardiography, computed tomography, and magnetic resonance imaging, is essential for timely diagnosis and intervention to prevent chronic complications and enhance patient outcomes. However, the rarity of CP and the specialized expertise required present challenges in diagnosis.

Recent Findings

Emerging artificial intelligence applications show promise in enhancing clinical decision-making and improving outcomes. Studies utilizing cognitive machine learning and deep learning algorithms (ResNet50) achieved an AUC above 0.95 in distinguishing CP from restrictive cardiomyopathy. However, generalization and interpretability issues remain, and the development of AI applications for CP is still nascent due to challenges in obtaining large, high-quality echocardiographic datasets.

Summary

Future research should evaluate the effectiveness of these models in diverse clinical scenarios, employing comprehensive echocardiography, point-of-care ultrasound, and other modalities to improve CP detection, individualized risk assessment, and treatment planning, ultimately enhancing patient prognosis.
Title
Applications of Artificial Intelligence in Constrictive Pericarditis: A Short Literature Review
Authors
Chieh-Ju Chao
Sushil Allen Luis
Reza Arsanjani
Jae K. Oh
Publication date
01-12-2025
Publisher
Springer US
Published in
Current Cardiology Reports / Issue 1/2025
Print ISSN: 1523-3782
Electronic ISSN: 1534-3170
DOI
https://doi.org/10.1007/s11886-025-02222-x
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Independent Medical Education Grant:
  • Bayer HealthCare Pharmaceuticals Inc.
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Abstract graphic of layered, concentric circular shapes in bright green, pink, blue, and purple on a dark blue background. The rings and segments form a complex radial pattern without text/© Springer Health+ IME