Investigation of Logisitic Regression Equation of Vacuous Pulse and Replete Pulse for Efficacy Evaluation of Clip-type Pulsimeter by using Magnetic Hall Device

자성홀소자를 이용한 집게형 맥진기의 유효성 평가를 위한 허맥과 실맥 로지스틱 회귀식 탐색

  • Yu, Jun-Sang (Dept. of Sasang Constitutional Medicine, Korean Medical Hospital, Sangji University) ;
  • Chang, Sei-Jin (Dept. of Preventive Medicine, Wonju College of Medicine, Yonsei University) ;
  • Sun, Seung-Ho (Dept. of Internal Medicine, Korean Medical Hospital, Sangji University) ;
  • Hong, Yu-Sik (Dept. of Computer Science Engineering, Sangji University) ;
  • Lee, Sang-Suk (Dept. of Oriental Biomedical Engineering, Sangji University)
  • 유준상 (상지대학교 부속한방병원 사상체질의학과) ;
  • 장세진 (연세대학교 원주의과대학 예방의학교실) ;
  • 선승호 (상지대학교 부속한방병원 한방내과) ;
  • 홍유식 (상지대학교 이공과대학 IT공학부) ;
  • 이상석 (상지대학교 보건과학대학 한방의료공학과)
  • Received : 2013.04.01
  • Accepted : 2013.04.18
  • Published : 2013.04.30

Abstract

The aims of this study are to investigate a logisitic regression equation of the vacuous pulse and the replete pulse for efficacy evaluation of clip-type pulsimeter by using magnetic Hall device. To evaluate the efficacy of clip-type pulsimeter by using magnetic Hall device as sensing the minute movement of a radial artery, one research clinical trial have been performed. The number of subject was 120, the clinical data of patients did treated with a normal statistical method. The systolic peak amplitude, the reflective peak amplitude and time, and the notch peak amplitude and time are analyzed major efficacy parameters to discern the vacuous pulse and the replete pulse. The equations included of five parameters such as systolic peak amplitude, the reflective peak amplitude and time, and the notch peak amplitude and notch amplitude time for determination of the vacuous pulse and the replete pulse were deducted by statistical logistic regression method. It suggests that the logistic regression equations are possible to develop the oriental algorithm for pulse diagnosis.

Keywords

References

  1. Nam DH, Lee WB, Hong YS, Lee SS. Measurement of spatial pulse wave velocity by using clip-type pulsimeter equipped with Hall sensor and photoplethysmography. Sensor 2013; 13: 4714-4723. https://doi.org/10.3390/s130404714
  2. Xu L, Wang K, Zhang D, Li Y, Wan Z, Wang J. Objectifying researches on traditional Chinese pulse diagnosis. Informatica Medica Slovenica 2003; 8: 56-63.
  3. Chiu YC, Arand PW, Shroff SG, Feldman T, Carroll TJ. Determination of pulse wave velocities with computerized algorithms. American Heart Journal 1991; 121: 1460-1469. https://doi.org/10.1016/0002-8703(91)90153-9
  4. Tyan CC, Liu SH, Chen JY, Chen JJ, Liang WM. A novel noninvasive measurement technique for analyzing the pressure pulse waveform of the radial artery. IEEE Trans. on Biomed. Eng. 2008; 55: 288-297. https://doi.org/10.1109/TBME.2007.910681
  5. Fleiss JL. Statistical methods for rates and proportions. Jonh Wiley & Sons, NewYork 1981.
  6. Cody RP, Smith JK. Applied statistics and the SAS programming Language. 5th edition. Pearson Prentice Hall. USA 2006.
  7. Lee SS, Ahn MC, Ahn SH. New measurement method of a radial pulse wave using multiple Hall array devices. J. Magnetics 2009; 14: 132-136. https://doi.org/10.4283/JMAG.2009.14.3.132
  8. Lee SS, Nam DH, Hong YS, Lee WB, Son IH, Kim KH, Choi JG. Measurement of blood pressure using an arterial pulsimeter equipped with a Hall device. Sensors 2011; 11: 1784-1793. https://doi.org/10.3390/s110201784
  9. Yoshikawa H, Ikeuchi T, Ka Y. Clinical efficacy of Ninjin-Youei-To for recovery of reduced physical strength of the patients after prostate hypertrophy operation. J. Japan Oriental Medicine 1999; 9: 617-622.
  10. Kim J, Kim J, Chun Y, Kim K, Kim S. Determination method of the vacuous pulse and the replete pulse. Republic of Korea Patent No. 10-2011-0137215, Date : Dec. 22th, 2011.