Publication: Introduction and Comparison of Novel Decentral Learning Schemes with Multiple Data Pools for Privacy-Preserving ECG Classification
Introduction and Comparison of Novel Decentral Learning Schemes with Multiple Data Pools for Privacy-Preserving ECG Classification
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Baumgartner, M., Veeranki, S. P. K., Hayn, D., & Schreier, G. (2023). Introduction and Comparison of Novel Decentral Learning Schemes with Multiple Data Pools for Privacy-Preserving ECG Classification. Journal of Healthcare Informatics Research, 7, 291–312. https://doi.org/10.1007/s41666-023-00142-5
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Artificial intelligence and machine learning have led to prominent and spectacular innovations in various scenarios. Application in medicine, however, can be challenging due to privacy concerns and strict legal regulations. Methods that centralize knowledge instead of data could address this issue. In this work, 6 different decentralized machine learning algorithms are applied to 12-lead ECG classification and compared to conventional, centralized machine learning. The results show that state-of-the-art federated learning leads to rea
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Baumgartner, M., Veeranki, S. P. K., Hayn, D., & Schreier, G. (2023). Introduction and Comparison of Novel Decentral Learning Schemes with Multiple Data Pools for Privacy-Preserving ECG Classification. Journal of Healthcare Informatics Research, 7, 291–312. https://doi.org/10.1007/s41666-023-00142-5