A Gentle Introduction to Deep Learning in Medical Image Processing

October 12, 2018 Β· Declared Dead Β· πŸ› Zeitschrift fΓΌr Medizinische Physik

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Authors Andreas Maier, Christopher Syben, Tobias Lasser, Christian Riess arXiv ID 1810.05401 Category cs.CV: Computer Vision Citations 450 Venue Zeitschrift fΓΌr Medizinische Physik Last Checked 3 months ago
Abstract
This paper tries to give a gentle introduction to deep learning in medical image processing, proceeding from theoretical foundations to applications. We first discuss general reasons for the popularity of deep learning, including several major breakthroughs in computer science. Next, we start reviewing the fundamental basics of the perceptron and neural networks, along with some fundamental theory that is often omitted. Doing so allows us to understand the reasons for the rise of deep learning in many application domains. Obviously medical image processing is one of these areas which has been largely affected by this rapid progress, in particular in image detection and recognition, image segmentation, image registration, and computer-aided diagnosis. There are also recent trends in physical simulation, modelling, and reconstruction that have led to astonishing results. Yet, some of these approaches neglect prior knowledge and hence bear the risk of producing implausible results. These apparent weaknesses highlight current limitations of deep learning. However, we also briefly discuss promising approaches that might be able to resolve these problems in the future.
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