Authors
Fanyu Bu, Chengsheng Hu, Qingchen Zhang, Changchuan Bai, Laurence T Yang, Thar Baker
Publication date
2020/9/7
Journal
IEEE Transactions on Fuzzy Systems
Volume
29
Issue
1
Pages
148-155
Publisher
IEEE
Description
Medical Internet of Things are generating a big volume of data to enable smart medicine that tries to offer computer-aided medical and healthcare services with artificial intelligence techniques like deep learning and clustering. However, it is a challenging issue for deep learning, and clustering algorithms to analyze large medical data because of their high computational complexity, thus hindering the progress of smart medicine. In this article, we present an incremental high-order possibilistic c-means algorithm (IHoPCM) on a cloud-edge computing system to achieve medical data coclustering of multiple hospitals in different locations. Specifically, each hospital employs the deep computation model to learn a feature tensor of each medical data object on the local edge computing system, and then uploads the feature tensors to the cloud computing platform. The high-order possibilistic c-means algorithm is performed …
Total citations
202120222023202421162
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