ESTIMATION OF THE LAG TIME BETWEEN DETRUSOR PRESSURE AND FLOW-RATE SIGNALS

被引:14
|
作者
KRANSE, R [1 ]
VANMASTRIGT, R [1 ]
BOSCH, R [1 ]
机构
[1] ERASMUS UNIV ROTTERDAM,DEPT UROL URODYNAM,3000 DR ROTTERDAM,NETHERLANDS
关键词
CROSS CORRELATION; PRESSURE-FLOW; URODYNAMICS;
D O I
10.1002/nau.1930140303
中图分类号
R5 [内科学]; R69 [泌尿科学(泌尿生殖系疾病)];
学科分类号
1002 ; 100201 ;
摘要
In a urodynamic measurement setup there is a considerable spatial separation between the uroflowmeter and the location where the detrusor pressure is measured. Therefore, a ''time shift'' (or lag time correction) has to be applied to one of these signals in order to align related samples in studies where pressure and flow rate are considered simultaneously (e.g., assessment of bladder contractility or bladder outlet resistance). Currently, a heuristic value for this time shift of 0.8 s is applied. In this article, we present a method to estimate the lag time directly from the measurements. Using this method we have found, amongst others, that the mean lag time in our clinic is 0.6 s for males, 0.4 s for females voiding in sitting position, and 1.1 s for females voiding in standing position using a special receptacle in video urodynamics. Furthermore, we found that sphincter/urethral activity during voiding (which causes a drop in flow rate and an accompanying increase in detrusor pressure) is associated (on average) with shorter lag times than straining (when a positive pressure rise accompanies an increase in flow rate). Additionally strong evidence is provided that lag time correction is not a major source of error in urodynamics. (C) 1995 Wiley-Liss, Inc.
引用
收藏
页码:217 / 229
页数:13
相关论文
共 50 条
  • [11] VIDEOCYSTOGRAPHY WITH SYNCHRONOUS DETRUSOR PRESSURE AND FLOW RATE RECORDINGS
    ARNOLD, EP
    BROWN, ADG
    WEBSTER, JR
    ANNALS OF THE ROYAL COLLEGE OF SURGEONS OF ENGLAND, 1974, 55 (02) : 90 - 98
  • [12] Flow-Rate–Pressure Characteristics of a Disk Blood Pump
    Chernyavskii A.M.
    Medvedev A.E.
    Prikhodko Y.M.
    Fomin V.M.
    Fomichev V.P.
    Fomichev A.V.
    Lomanovich K.A.
    Ruzmatov T.M.
    Karaskov A.M.
    Journal of Engineering Physics and Thermophysics, 2017, 90 (6) : 1475 - 1478
  • [13] PRESSURE-CYCLED VENTILATORS AND FLOW-RATE CONTROL
    EDWARDS, WL
    SAPPENFIELD, RS
    ANESTHESIA AND ANALGESIA CURRENT RESEARCHES, 1968, 47 (01): : 77 - +
  • [14] VARIATION OF SALIVARY FLOW-RATE EFFECTS WITH TIME OF DAY
    FERGUSON, DB
    JOURNAL OF DENTAL RESEARCH, 1995, 74 : 546 - 546
  • [15] DISSOCIATION BETWEEN STOP FLOW PRESSURE (PSF) AND FILTRATION-RATE RESPONSE TO CHANGING LOOP OF HENLE FLOW-RATE (VLP)
    BRIGGS, JP
    SCHNERMANN, J
    KIDNEY INTERNATIONAL, 1985, 27 (01) : 293 - 293
  • [16] MEASUREMENT OF INSTANTANEOUS FLOW-RATE THROUGH ESTIMATION OF VELOCITY PROFILES
    UCHIYAMA, M
    HAKOMORI, K
    IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 1983, 28 (03) : 380 - 388
  • [17] PROTEIN ESTIMATION BY THE PRODUCT OF INTEGRATED PEAK AREA AND FLOW-RATE
    BUCK, MA
    OLAH, TA
    WEITZMANN, CJ
    COOPERMAN, BS
    ANALYTICAL BIOCHEMISTRY, 1989, 182 (02) : 295 - 299
  • [18] ESTIMATION OF THE FLOW-RATE OF THE SEPARATING AGENT IN EXTRACTIVE AND AUTOEXTRACTIVE DISTILLATION
    FROLKOVA, AK
    PAVLENKO, TG
    TIMOFEEV, VS
    JOURNAL OF APPLIED CHEMISTRY OF THE USSR, 1987, 60 (03): : 594 - 597
  • [19] MEASUREMENT AND ESTIMATION OF CIRCULATION FLOW-RATE DURING RH TREATMENT
    KUWABARA, T
    MORI, K
    SAITOU, Y
    MIMURA, M
    TANAKA, T
    UMEZAWA, K
    TRANSACTIONS OF THE IRON AND STEEL INSTITUTE OF JAPAN, 1987, 27 (08) : B202 - B202
  • [20] Seepage from a Channel: Solution Structure and Flow-Rate Estimation
    Mouangou, J. E. R.
    FLUID DYNAMICS, 2006, 41 (01) : 100 - 111