2020
DOI: 10.3390/s20143829
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Genetic Deep Convolutional Autoencoder Applied for Generative Continuous Arterial Blood Pressure via Photoplethysmography

Abstract: Hypertension affects a huge number of people around the world. It also has a great contribution to cardiovascular- and renal-related diseases. This study investigates the ability of a deep convolutional autoencoder (DCAE) to generate continuous arterial blood pressure (ABP) by only utilizing photoplethysmography (PPG). A total of 18 patients are utilized. LeNet-5- and U-Net-based DCAEs, respectively abbreviated LDCAE and UDCAE, are compared to the MP60 IntelliVue Patient Monitor, as the gold standard. … Show more

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Cited by 30 publications
(34 citation statements)
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“…Additionally, while DCAE model only accepted fixed input length, the methodology proposed in the present work does not have that limitation. Although in Sideris et al [ 27 ] and Sadrawi et al [ 28 ] MAE and RMSE values were lower than those in the present work, the number of subjects evaluated was lower and there was no subject’s data restriction between train and test sets.…”
Section: Discussioncontrasting
confidence: 74%
See 2 more Smart Citations
“…Additionally, while DCAE model only accepted fixed input length, the methodology proposed in the present work does not have that limitation. Although in Sideris et al [ 27 ] and Sadrawi et al [ 28 ] MAE and RMSE values were lower than those in the present work, the number of subjects evaluated was lower and there was no subject’s data restriction between train and test sets.…”
Section: Discussioncontrasting
confidence: 74%
“…On the contrary, in our approach just a single model needs to be trained. In Sadrawi et al [ 28 ] the proposed DCAE model was trained with 18 subjects from closed data. Additionally, while DCAE model only accepted fixed input length, the methodology proposed in the present work does not have that limitation.…”
Section: Discussionmentioning
confidence: 99%
See 1 more Smart Citation
“…In [6,7], the authors trained a very deep RNN by introducing skip connections between layers to overcome the vanishing gradient problem [44]. Yang [46].…”
Section: Bp Prediction Using Ppg Featuresmentioning
confidence: 99%
“…The CNN model is a feed forward neural network, and it is a multilayer perceptron model constructed to recognize two-dimensional and above images [ 13 , 14 ]. The current CNN model includes LeNet and AlexNet models, among which the LeNet-5 model is relatively mature, and the network structure is simpler [ 15 , 16 ].…”
Section: Discussionmentioning
confidence: 99%