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請用此 Handle URI 來引用此文件: http://scholars.ntou.edu.tw/handle/123456789/17299
標題: Deep learning algorithm evaluation of hypertension classification in less photoplethysmography signals conditions
作者: Yen, Chih-Ta 
Chang, Sheng-Nan
Liao, Cheng-Hong
關鍵字: Photoplethysmography;hypertensive;deep learning;residual network convolutional neural network;bidirectional long short-term memory
公開日期: 三月-2021
出版社: SAGE PUBLICATIONS LTD
卷: 54
期: 3-4
起(迄)頁: 439-445
來源出版物: MEAS CONTROL-UK
摘要: 
This study used photoplethysmography signals to classify hypertensive into no hypertension, prehypertension, stage I hypertension, and stage II hypertension. There are four deep learning models are compared in the study. The difficulties in the study are how to find the optimal parameters such as kernel, kernel size, and layers in less photoplethysmographyt (PPG) training data condition. PPG signals were used to train deep residual network convolutional neural network (ResNetCNN) and bidirectional long short-term memory (BILSTM) to determine the optimal operating parameters when each dataset consisted of 2100 data points. During the experiment, the proportion of training and testing datasets was 8:2. The model demonstrated an optimal classification accuracy of 76% when the testing dataset was used.
URI: http://scholars.ntou.edu.tw/handle/123456789/17299
ISSN: 0020-2940
DOI: 10.1177/00202940211001904
顯示於:03 GOOD HEALTH AND WELL-BEING
電機工程學系

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