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Beat-to-Beat Continuous Blood Pressure Estimation Using Bidirectional Long Short-Term Memory Network

机译:使用双向长期内存网络击败连续血压估计

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摘要

Continuous blood pressure (BP) monitoring is important for patients with hypertension. However, BP measurement with a cuff may be cumbersome for the patient. To overcome this limitation, various studies have suggested cuffless BP estimation models using deep learning algorithms. A generalized model should be considered to decrease the training time, and the model reproducibility should be taken into account in multi-day scenarios. In this study, a BP estimation model with a bidirectional long short-term memory network is proposed. The features are extracted from the electrocardiogram, photoplethysmogram, and ballistocardiogram. The leave-one-subject-out (LOSO) method is incorporated to generalize the model and fine-tuning is applied. The model was evaluated using one-day and multi-day tests. The proposed model achieved a mean absolute error (MAE) of 2.56 and 2.05 mmHg for the systolic and diastolic BP (SBP and DBP), respectively, in the one-day test. Moreover, the results demonstrated that the LOSO method with fine-tuning was more compatible in the multi-day test. The MAE values of the model were 5.82 and 5.24 mmHg for the SBP and DBP, respectively.
机译:连续血压(BP)监测对于高血压患者很重要。然而,与袖带的BP测量可能对患者有麻烦。为了克服这种限制,各种研究建议使用深度学习算法建议无齿状的BP估计模型。广义模型应考虑降低培训时间,在多日情景中应考虑模型再现性。在该研究中,提出了一种具有双向短期存储网络的BP估计模型。这些特征是从心电图,光学读数和颅骨心电图中提取的。休假 - 单位出局(LOSO)方法被概括为模型,应用微调。使用单日和多日测试评估模型。在一天测试中,所提出的模型分别达到了2.56和2.05mmHg的平均绝对误差(MAE),为收缩性和舒张性BP(SBP和DBP)分别进行了一次性测试。此外,结果表明,在多日测试中,具有微调的LOSO方法更加兼容。 SBP和DBP的模型的MAE值分别为5.82和5.24mmHg。

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