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Real-time human blood pressure measurement based on laser self-mixing interferometry with extreme learning machine

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【作者】 王秀琳吕莉萍胡路黄文财

【Author】 WANG Xiu-lin;Lü Li-ping;HU Lu;HUANG Wen-cai;Department of Physics, Jimei University;Department of Electronics Engineering, Xiamen University;

【通讯作者】 黄文财;

【机构】 Department of Physics, Jimei UniversityDepartment of Electronics Engineering, Xiamen University

【摘要】 In this paper, we present a method based on self-mixing interferometry combing extreme learning machine for real-time human blood pressure measurement. A signal processing method based on wavelet transform is applied to extract reversion point in the self-mixing interference signal, thus the pulse wave profile is successfully reconstructed. Considering the blood pressure values are intrinsically related to characteristic parameters of the pulse wave, 80 samples from the MIMIC-II database are used to train the extreme learning machine blood pressure model. In the experiment, 15 measured samples of pulse wave signal are used as the prediction sets. The results show that the errors of systolic and diastolic blood pressure are both within 5 mm Hg compared with that by the Coriolis method.

【Abstract】 In this paper, we present a method based on self-mixing interferometry combing extreme learning machine for real-time human blood pressure measurement. A signal processing method based on wavelet transform is applied to extract reversion point in the self-mixing interference signal, thus the pulse wave profile is successfully reconstructed. Considering the blood pressure values are intrinsically related to characteristic parameters of the pulse wave, 80 samples from the MIMIC-II database are used to train the extreme learning machine blood pressure model. In the experiment, 15 measured samples of pulse wave signal are used as the prediction sets. The results show that the errors of systolic and diastolic blood pressure are both within 5 mm Hg compared with that by the Coriolis method.

【关键词】 extremeinterferometrymixingreconstructedwaveletsystolicCoriolishiddendeviationfitting
【基金】 supported by the National Natural Science Foundation of China (No.61675174);the Natural Science Foundation of Fujian Province (No.2020J01705)
  • 【文献出处】 Optoelectronics Letters ,光电子快报(英文版) , 编辑部邮箱 ,2020年06期
  • 【分类号】TN911.7;R443.5
  • 【被引频次】2
  • 【下载频次】13
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