Problems of representation of electrocardiograms in convolutional neural networks

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Authors Iana Sereda, Sergey Alekseev, Aleksandra Koneva, Alexey Khorkin, Grigory Osipov arXiv ID 2012.00493 Category cs.LG: Machine Learning Cross-listed eess.SP, stat.ML Citations 1 Venue IEEE International Joint Conference on Neural Network Last Checked 5 months ago
Abstract
Using electrocardiograms as an example, we demonstrate the characteristic problems that arise when modeling one-dimensional signals containing inaccurate repeating pattern by means of standard convolutional networks. We show that these problems are systemic in nature. They are due to how convolutional networks work with composite objects, parts of which are not fixed rigidly, but have significant mobility. We also demonstrate some counterintuitive effects related to generalization in deep networks.
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