Reconstruction of central arterial pressure waveform based on CBi-SAN network from radial pressure waveform.

Bi-LSTM Cardiovascular diseases Central arterial pressure Convolutional neural networks Deep learning Self-attention Waveform reconstruction

Journal

Artificial intelligence in medicine
ISSN: 1873-2860
Titre abrégé: Artif Intell Med
Pays: Netherlands
ID NLM: 8915031

Informations de publication

Date de publication:
11 2023
Historique:
received: 12 06 2022
revised: 30 05 2023
accepted: 06 10 2023
medline: 6 11 2023
pubmed: 5 11 2023
entrez: 4 11 2023
Statut: ppublish

Résumé

The central arterial pressure (CAP) is an important physiological indicator of the human cardiovascular system which represents one of the greatest threats to human health. Accurate non-invasive detection and reconstruction of CAP waveforms are crucial for the reliable treatment of cardiovascular system diseases. However, the traditional methods are reconstructed with relatively low accuracy, and some deep learning neural network models also have difficulty in extracting features, as a result, these methods have potential for further advancement. In this study, we proposed a novel model (CBi-SAN) to implement an end-to-end relationship from radial artery pressure (RAP) waveform to CAP waveform, which consisted of the convolutional neural network (CNN), the bidirectional long-short-time memory network (BiLSTM), and the self-attention mechanism to improve the performance of CAP reconstruction. The data on invasive measurements of CAP and RAP waveform were used in 62 patients before and after medication to develop and validate the performance of CBi-SAN model for reconstructing CAP waveform. We compared it with traditional methods and deep learning models in mean absolute error (MAE), root mean square error (RMSE), and Spearman correlation coefficient (SCC). Study results indicated the CBi-SAN model performed great performance on CAP waveform reconstruction (MAE: 2.23 ± 0.11 mmHg, RMSE: 2.21 ± 0.07 mmHg), concurrently, the best reconstruction effect was obtained in the central artery systolic pressure (CASP) and the central artery diastolic pressure(CADP) (RMSE

Identifiants

pubmed: 37925212
pii: S0933-3657(23)00197-5
doi: 10.1016/j.artmed.2023.102683
pii:
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

102683

Informations de copyright

Copyright © 2023 Elsevier B.V. All rights reserved.

Déclaration de conflit d'intérêts

Declaration of competing interest The authors declare no conflicts of interest relevant to the manuscript content.

Auteurs

Hanguang Xiao (H)

College of Artificial Intelligent, Chongqing University of Technology, Chongqing 401135, China. Electronic address: simenxiao1211@163.com.

Wangwang Song (W)

College of Artificial Intelligent, Chongqing University of Technology, Chongqing 401135, China.

Chang Liu (C)

College of Artificial Intelligent, Chongqing University of Technology, Chongqing 401135, China.

Bo Peng (B)

College of Artificial Intelligent, Chongqing University of Technology, Chongqing 401135, China.

Mi Zhu (M)

College of Artificial Intelligent, Chongqing University of Technology, Chongqing 401135, China.

Bin Jiang (B)

College of Artificial Intelligent, Chongqing University of Technology, Chongqing 401135, China.

Zhi Liu (Z)

College of Artificial Intelligent, Chongqing University of Technology, Chongqing 401135, China. Electronic address: liuzhi@cqut.edu.cn.

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Classifications MeSH