Paper
27 November 2019 Convolutional neural networks application in cardiovascular decision support systems
Natalia Konnova, Mikhail Basarab, Michael Khachatryan, Anna Domracheva, Igor Ivanov
Author Affiliations +
Proceedings Volume 11321, 2019 International Conference on Image and Video Processing, and Artificial Intelligence; 113212D (2019) https://doi.org/10.1117/12.2548193
Event: The Second International Conference on Image, Video Processing and Artifical Intelligence, 2019, Shanghai, China
Abstract
The paper considers the possibilities of using neural network methods of machine learning to diagnose the states of the human cardiovascular system and support decision-making in cardiology and cardiac surgery. The issues of processing and preparation of electrocardiography signals, selection of architecture and tuning of neural network parameters for automation of diagnosis are discussed. Here, the results obtained with the help of multilayer perceptrons and convolutional neural networks to assign the submitted input cardiovascular data to one of the classes of states in the selected space are examined. Based on a specialized developed software, the proprietary numerical experiments with real clinical data were carried out. Given the above results, demonstrating the applicability of the used deep learning methods and algorithms to diagnostic automation, a model of a hierarchical decision support system is proposed.
© (2019) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Natalia Konnova, Mikhail Basarab, Michael Khachatryan, Anna Domracheva, and Igor Ivanov "Convolutional neural networks application in cardiovascular decision support systems", Proc. SPIE 11321, 2019 International Conference on Image and Video Processing, and Artificial Intelligence, 113212D (27 November 2019); https://doi.org/10.1117/12.2548193
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KEYWORDS
Electrocardiography

Neurons

Convolutional neural networks

Neural networks

Decision support systems

Machine learning

Cardiovascular system

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