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  • https://doi.org/10.1201/9781003038450-8Copy DOI Icon

Deep Learning for Medical Dataset Classification Based on Convolutional Neural Networks

  • Jul 28, 2021
  • S Nathiya +1 more
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Abstract

Deep Learning has the potential to renovate healthcare; alternatively, extensive skill is vital to train such models. In medical imaging, a diagnosis with precision and speed is done through Artificial Intelligence (AI), which includes Deep Learning. When compared with healthcare professionals, the Deep Learning models achieved a similar level of diagnostic accuracy. As such, most of the diagnostic technique is systematic, as it has intelligent classification approaches with the computer-aided decision support systems. Deep Learning methods, such as Convolutional Neural Network (CNN), Deep Belief Network (DBN), and Recurrent Neural Network (RNN), support the classification. In recent studies, CNN has been found to be a vital technique for extracting valuable features from a medical dataset of images and may result in higher accuracy. Artificial intelligence (AI) in the form of Deep Learning (DL) and within the field of medical imaging has created remarkable developments in the classification of medical imaging datasets.

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