Machine learning in multiexposure laser speckle contrast imaging can replace conventional laser Doppler flowmetry

被引:22
作者
Fredriksson, Ingemar [1 ,2 ]
Hultman, Martin [1 ]
Stromberg, Tomas [1 ]
Larsson, Marcus [1 ]
机构
[1] Linkoping Univ, Dept Biomed Engn, Linkoping, Sweden
[2] Perimed AB, Stockholm, Sweden
基金
瑞典研究理事会;
关键词
blood flow; microcirculation; laser speckle contrast analysis; artificial neural networks; SIZE;
D O I
10.1117/1.JBO.24.1.016001
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Laser speckle contrast imaging (LSCI) enables video rate imaging of blood flow. However, its relation to tissue blood perfusion is nonlinear and depends strongly on exposure time. By contrast, the perfusion estimate from the slower laser Doppler flowmetry (LDF) technique has a relationship to blood perfusion that is better understood. Multiexposure LSCI (MELSCI) enables a perfusion estimate closer to the actual perfusion than that using a single exposure time. We present and evaluate a method that utilizes contrasts from seven exposure times between 1 and 64 ms to calculate a perfusion estimate that resembles the perfusion estimate from LDF. The method is based on artificial neural networks (ANN) for fast and accurate processing of MELSCI contrasts to perfusion. The networks are trained using modeling of Doppler histograms and speckle contrasts from tissue models. The importance of accounting for noise is demonstrated. Results show that by using ANN, MELSCI data can be processed to LDF perfusion with high accuracy, with a correlation coefficient R = 1.000 for noise-free data, R = 0.993 when a moderate degree of noise is present, and R = 0.995 for in vivo data from an occlusion-release experiment. (C) The Authors. Published by SPIE under a Creative Commons Attribution 4.0 Unported License.
引用
收藏
页数:11
相关论文
共 50 条
[21]   Optimizing the precision of laser speckle contrast imaging [J].
Olmos, Alberto Gonzalez ;
Zilpelwar, Sharvari ;
Sunil, Smrithi ;
Boas, David A. ;
Postnov, Dmitry D. .
SCIENTIFIC REPORTS, 2023, 13 (01)
[22]   An experimental model for minimizing errors in laser speckle contrast imaging for microcirculation analysis [J].
Sujatha, N. ;
Banerjee, Arnab .
INTERNATIONAL CONFERENCE ON EXPERIMENTAL MECHANICS 2014, 2015, 9302
[23]   Real-time video-rate perfusion imaging using multi-exposure laser speckle contrast imaging and machine learning [J].
Hultman, Martin ;
Larsson, Marcus ;
Stromberg, Tomas ;
Fredriksson, Ingemar .
JOURNAL OF BIOMEDICAL OPTICS, 2020, 25 (11)
[24]   Quantitative blood flow velocity imaging using laser speckle flowmetry [J].
Nadort, Annemarie ;
Kalkman, Koen ;
van Leeuwen, Ton G. ;
Faber, Dirk J. .
SCIENTIFIC REPORTS, 2016, 6
[25]   A Compact Laser Imaging System for Concurrent Reflectance Confocal Microscopy and Laser Doppler Flowmetry [J].
Mowla, Alireza ;
Taimre, Thomas ;
Lim, Yah Leng ;
Bertling, Karl ;
Wilson, Stephen J. ;
Prow, Tarl W. ;
Rakic, Aleksander D. .
IEEE PHOTONICS JOURNAL, 2016, 8 (05)
[26]   Multiscale Compression Entropy of Microvascular Blood Flow Signals: Comparison of Results from Laser Speckle Contrast and Laser Doppler Flowmetry Data in Healthy Subjects [J].
Humeau-Heurtier, Anne ;
Baumert, Mathias ;
Mahe, Guillaume ;
Abraham, Pierre .
ENTROPY, 2014, 16 (11) :5777-5795
[27]   Connecting Laser Doppler Perfusion Imaging and Laser Speckle Contrast Analysis - art. no. 68630C [J].
Draijer, Matthijs J. ;
Hondebrink, Erwin ;
van Leeuwen, Ton G. ;
Steenbergen, Wiendelt .
OPTICAL DIAGNOSTICS AND SENSING VIII, 2008, 6863 :C8630-C8630
[28]   Microcirculation assessment using an individualized model for diffuse reflectance spectroscopy and conventional laser Doppler flowmetry [J].
Stromberg, Tomas ;
Karlsson, Hanna ;
Fredriksson, Ingemar ;
Nystrom, Fredrik H. ;
Larsson, Marcus .
JOURNAL OF BIOMEDICAL OPTICS, 2014, 19 (05)
[29]   Imaging depth and multiple scattering in laser speckle contrast imaging [J].
Davis, Mitchell A. ;
Kazmi, S. M. Shams ;
Dunn, Andrew K. .
JOURNAL OF BIOMEDICAL OPTICS, 2014, 19 (08)
[30]   Laser speckle contrast imaging for measuring blood flow [J].
Briers, J. David .
OPTICA APPLICATA, 2007, 37 (1-2) :139-152