The effect of applied sensor contact force on pulse transit time

被引:48
作者
Teng, X. F. [1 ]
Zhang, Y. T. [1 ]
机构
[1] Chinese Univ Hong Kong, Dept Elect Engn, Joint Res Ctr Biomed Engn, Shatin, Hong Kong, Peoples R China
关键词
contact force; photoplethysmogram; pulse transit time;
D O I
10.1088/0967-3334/27/8/002
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Pulse transit time (PTT) is usually determined as the time interval between the peak of the electrocardiogram (ECG) R wave and a characteristic point of the peripheral pulse measured by photoplethysmography. However, it was found that the photoplethysmogram (PPG) is affected by the contact force between the photoplethysmographic sensor and the measurement site, i.e. finger. Therefore, we hypothesized that the PTT may be altered by the applied sensor contact force. An ECG and PPG were recorded simultaneously from 30 healthy subjects using 12 magnitudes of contact force (0.1 N-1.8 N). Three characteristic points of the PPG were selected to determine the PTT, including the points near the foot (PTT1), on the systole phase (PTT2) and near the peak (PTT3). Both PTT1 and PTT2 increased significantly (p = 0.014 for PTT1 and p = 0.038 for PTT2) with the sensor contact force until the transmural force reached -0.1 N. With further increase in the contact force, they kept at an almost constant level. Such a changing trend was not found in PTT3. The results of this study suggest that the applied sensor contact force should be carefully controlled in PTT measurement to avoid diminishing its value as a diagnostic tool.
引用
收藏
页码:675 / 684
页数:10
相关论文
共 44 条
[1]   Variability of photoplethysmography peripheral pulse measurements at the ears, thumbs and toes [J].
Allen, J ;
Murray, A .
IEE PROCEEDINGS-SCIENCE MEASUREMENT AND TECHNOLOGY, 2000, 147 (06) :403-407
[2]   THE COVARIATION OF BLOOD-PRESSURE AND PULSE TRANSIT-TIME IN HYPERTENSIVE PATIENTS [J].
ALLEN, RA ;
SCHNEIDER, JA ;
DAVIDSON, DM ;
WINCHESTER, MA ;
TAYLOR, CB .
PSYCHOPHYSIOLOGY, 1981, 18 (03) :301-306
[3]  
[Anonymous], Z BIOL
[4]   CALCULATION OF PULSE-WAVE VELOCITY USING CROSS-CORRELATION - EFFECTS OF REFLEXES IN THE ARTERIAL TREE [J].
BENTHIN, M ;
DAHL, P ;
RUZICKA, R ;
LINDSTROM, K .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1991, 17 (05) :461-469
[5]   Aortic pulse wave velocity as a marker of cardiovascular risk in hypertensive patients [J].
Blacher, J ;
Asmar, R ;
Djane, S ;
London, GM ;
Safar, ME .
HYPERTENSION, 1999, 33 (05) :1111-1117
[6]   THE RELATIONSHIP BETWEEN ARTERIAL PULSE-WAVE VELOCITY AND PULSE FREQUENCY AT DIFFERENT PRESSURES [J].
CALLAGHAN, FJ ;
BABBS, CF ;
BOURLAND, JD ;
GEDDES, LA .
JOURNAL OF MEDICAL ENGINEERING & TECHNOLOGY, 1984, 8 (01) :15-18
[7]   RELATIONSHIP BETWEEN PULSE-WAVE VELOCITY AND ARTERIAL ELASTICITY [J].
CALLAGHAN, FJ ;
GEDDES, LA ;
BABBS, CF ;
BOURLAND, JD .
MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 1986, 24 (03) :248-254
[8]   DETERMINATION OF PULSE-WAVE VELOCITIES WITH COMPUTERIZED ALGORITHMS [J].
CHIU, YC ;
ARAND, PW ;
SHROFF, SG ;
FELDMAN, T ;
CARROLL, JD .
AMERICAN HEART JOURNAL, 1991, 121 (05) :1460-1470
[9]  
DEPATER L, 1962, ACTA PHYSIOL POL, V10, P378
[10]   Determination of appropriate recording force for non-invasive measurement of arterial pressure pulses [J].
Driscoll, MD ;
Arnold, JMO ;
Marchiori, GE ;
Harker, LA ;
Sherebrin, MH .
CLINICAL SCIENCE, 1997, 92 (06) :559-566