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How to Build a Laser Speckle Contrast Imaging LSCI System to Monitor Blood Flow
Published on: November 11, 2010
Effect of static scatterers in laser speckle contrast imaging: an experimental study on correlation and contrast
Pedro G Vaz1, Anne Humeau-Heurtier, Edite Figueiras
1LIBPhys-UC, Department of Physics, University of Coimbra, R. Larga, 3004-516, Coimbra, Portugal. LARIS-Laboratoire Angevin de Recherche en Ingénierie des Systèmes, University of Angers, 62 avenue Notre-Dame du Lac, 49000 Angers, France.
Abstract:
Laser speckle contrast imaging (LSCI) is a non-invasive microvascular blood flow assessment technique with good temporal and spatial resolution. Most LSCI systems, including commercial devices, can perform only qualitative blood flow evaluation, which is a major limitation of this technique. There are several factors that prevent the utilization of LSCI as a quantitative technique. Among these factors, we can highlight the effect of static scatterers. The goal of this work was to study the influence of differences in static and dynamic scatterer concentration on laser speckle correlation and contrast. In order to achieve this, a laser speckle prototype was developed and tested using an optical phantom with various concentrations of static and dynamic scatterers. It was found that the laser speckle correlation could be used to estimate the relative concentration of static/dynamic scatterers within a sample. Moreover, the speckle correlation proved to be independent of the dynamic scatterer velocity, which is a fundamental characteristic to be used in contrast correction.
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