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Assessment of Non-Invasive Blood Pressure Prediction from PPG and rPPG Signals Using Deep Learning

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Mendeley Data2024-03-27 更新2024-06-27 收录
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https://zenodo.org/record/5590603
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This dataset is a subset of the MIMIC-III dataset used for non-invasive blood pressure prediction. PPG and ABP data were divided into windows of 7s length (875 data points). Systolic and diastolic blood pressure values were derived from the ABP windows. Each sample of the dataset consists of a PPG signal and blood pressure values as well as a unique subject identifier. The file consists of three datasets: PPG: PPG data of size 905,400 x 875 label: BP data of size 905,400 x 2 subject_idx: subject affiliation of each sample (size 905,400 x 1) Furthermore, this submission contains the following models: AlexNet ResNet50 LSTM Architecture published by Slapnicar et al. 2019 The architectures were trained using a non-mixed dataset derived from the MIMIC-III waveform database. Samples were divided between training, validation and test set based on their subject affiliation preventing contamination of validation and test sets with samples from subjects used for training.
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2023-06-28
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