Analysis and processing of laser Doppler perfusion monitoring signals recorded from the beating heart

被引:0
|
作者
M. G. D. Karlsson
H. Casimir-Ahn
U. Lönn
K. Wårdell
机构
[1] Linköpings universitet,Department of Biomedical Engineering & Competence Center Noninvasive Medical Measurements (NIMED)
[2] University Hospital,Linköping Heart Center
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Laser Doppler perfusion monitoring (LDPM) can be used for monitoring myocardial perfusion in the non-beating heart. However, the movement of the beating heart generates large artifacts. Therefore the aim of the study was to develop an LDPM system capable of correlating the laser Doppler signals to the cardiac cycle and to process the signals to reduce the movement artifacts. Measurements were performed on three calves, both on the normal beating heart and during occlusion of the left anterior descending coronary artery (LAD). The recorded LDPM signals were digitally processed and correlated to the sampled ECG. Large variations in the output (perfusion) and DC signals during the cardiac cycle were found, with average coefficients of variation of 0.36 and 0.14 (n-14), respectively. However, sections with a relatively low, stable output signal were found in late diastole, where the movement of the heart is at a minimum. Occlusion of the LAD showed the importance of recording the laser Doppler signals at an appropriate point in the cardiac cycle, in this case late systole, to minimise movement artifacts. It is possible to further reduce movement artifacts by increasing the lower cutoff frequency when calculating the output signal.
引用
收藏
页码:255 / 262
页数:7
相关论文
共 50 条
  • [21] Characterisation of very low frequency oscillations in laser Doppler perfusion signals with a singular spectrum analysis
    Azulay, David-Olivier
    Brain, Phil
    Sultana, Stefan R.
    MICROVASCULAR RESEARCH, 2011, 81 (03) : 239 - 244
  • [22] COPD Detection By Doppler Signals Recorded From The Lung Vasculature
    Weiler-Ravell, D.
    Unterman, A.
    Solter, E.
    Milman, U.
    Zreik, M.
    Cohen, Y.
    Schatzberger, R.
    Palti, Y.
    AMERICAN JOURNAL OF RESPIRATORY AND CRITICAL CARE MEDICINE, 2013, 187
  • [23] Effects of bleaching on laser Doppler blood-flow signals recorded from human teeth in vitro
    Ajcharanukul, Orapin
    Matthews, Bruce
    ARCHIVES OF ORAL BIOLOGY, 2015, 60 (10) : 1471 - 1473
  • [24] Pulsed laser-Doppler flowmetry for monitoring deep perfusion
    Kolkman, RGM
    Hondebrink, E
    Bolt, RA
    Steenbergen, W
    de Mul, FFM
    HYBRID AND NOVEL IMAGING AND NEW OPTICAL INSTRUMENTATION FOR BIOMEDICAL APPLICATIONS, 2001, 4434 : 204 - 207
  • [25] Digital hilbert transform for processing of laser Doppler vibrometer signals
    Grechikhin, VA
    Rinkevichius, BS
    SECOND INTERNATIONAL CONFERENCE ON VIBRATION MEASUREMENTS BY LASER TECHNIQUES: ADVANCES AND APPLICATIONS, 1996, 2868 : 89 - 96
  • [26] Quasi-optimal processing of laser Doppler vibrometer signals
    V. A. Grechikhin
    Optoelectronics, Instrumentation and Data Processing, 2012, 48 (3) : 244 - 249
  • [27] Quasi-Optimal Processing of Laser Doppler Vibrometer Signals
    Grechikhin, V. A.
    OPTOELECTRONICS INSTRUMENTATION AND DATA PROCESSING, 2012, 48 (03) : 244 - 249
  • [28] SPATIAL HETEROGENEITY IN NORMAL SKIN PERFUSION RECORDED WITH LASER-DOPPLER IMAGING AND FLOWMETRY
    WARDELL, K
    BRAVERMAN, IM
    SILVERMAN, DG
    NILSSON, GE
    MICROVASCULAR RESEARCH, 1994, 48 (01) : 26 - 38
  • [29] Spectral analysis of laser Doppler flowmetry signals
    Campos, Rita
    Figueiras, Edite
    Ferreira, Luis F. Requicha
    Humeau-Heurtier, Anne
    2012 IEEE 2ND PORTUGUESE MEETING IN BIOENGINEERING (ENBENG), 2012,
  • [30] Cutaneous perfusion of the human lactating breast: a pilot study with laser Doppler perfusion monitoring
    van der Hoek, Miriam
    den Haan, Lya
    Kaspers, Ageeth
    Steenbergen, Wiendelt
    Bosschaart, Nienke
    PHYSIOLOGICAL MEASUREMENT, 2019, 40 (05)