Vol. 4 No. 1 (2024): African Journal of Artificial Intelligence and Sustainable Development
Articles

Advanced Image Reconstruction Techniques Using Deep Learning for High-Quality Medical Applications: Develops deep learning models for image reconstruction in medical imaging modalities, improving image quality and diagnostic accuracy

Dr. Inês Duarte
Professor of Biomedical Engineering, University of Minho, Portugal
Cover

Published 14-05-2024

Keywords

  • Deep Learning,
  • Image Reconstruction,
  • Medical Imaging,
  • Convolutional Neural Networks,
  • Generative Adversarial Networks

How to Cite

[1]
D. I. Duarte, “Advanced Image Reconstruction Techniques Using Deep Learning for High-Quality Medical Applications: Develops deep learning models for image reconstruction in medical imaging modalities, improving image quality and diagnostic accuracy”, African J. of Artificial Int. and Sust. Dev., vol. 4, no. 1, pp. 108–120, May 2024, Accessed: Dec. 23, 2024. [Online]. Available: https://africansciencegroup.com/index.php/AJAISD/article/view/26

Abstract

Deep learning has shown remarkable success in various medical imaging applications, including image reconstruction. This paper presents a comprehensive review and analysis of deep learning-based image reconstruction techniques for high-quality medical imaging. The primary focus is on the development and evaluation of deep learning models for improving image quality and diagnostic accuracy in medical imaging modalities. Various deep learning architectures, such as convolutional neural networks (CNNs) and generative adversarial networks (GANs), are discussed in detail, along with their applications in different medical imaging modalities. The paper also explores challenges, current trends, and future directions in this rapidly evolving field. Overall, deep learning-based image reconstruction holds great promise for enhancing medical imaging quality and facilitating more accurate diagnoses.

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