ArticleFrontiers of optoelectronics2025
Laser speckle contrast imaging with principal component and entropy analysis: a novel approach for depth-independent blood flow assessment.
Article in Frontiers of optoelectronics, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 5 papers.
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5 citing papers in PubMed.
- Roadmap for light interaction with biophotonic surfaces and their diverse applications.Journal of biomedical optics · 2026Article
- Impact of the β correction factor on the accuracy of speckle contrast imaging measurements.Biomedical optics express · 2026Article
- Neuro-lymphaphotonics opens new horizons of the future technologies for the therapy of brain diseases.Theranostics · 2026Review
- Advanced optical phantom mimicking microvascular and directed blood flow in mouse brain.Biomedical engineering letters · 2026Article
- Laser speckle contrast imaging of hepatic microcirculation.Biomedical optics express · 2025Article
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Authors and funding
12 authors.
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Abstract
Current study presents an advanced method for improving the visualization of subsurface blood vessels using laser speckle contrast imaging (LSCI), enhanced through principal component analysis (PCA) filtering. By combining LSCI and laser speckle entropy imaging with PCA filtering, the method effectively separates static and dynamic components of the speckle signal, significantly improving the accuracy of blood flow assessments, even in the presence of static scattering layers located above and below the vessel. Experiments conducted on optical phantoms, with the vessel depths ranging from 0.6 to 2 mm, and in vivo studies on a laboratory mouse ear demonstrate substantial improvements in image contrast and resolution. The method's sensitivity to blood flow velocity within the physiologic range (0.98-19.66 mm/s) is significantly enhanced, while its sensitivity to vessel depth is minimized. These results highlight the method's ability to assess blood flow velocity independently of vessel depth, overcoming a major limitation of conventional LSCI techniques. The proposed approach holds great potential for non-invasive biomedical imaging, offering improved diagnostic accuracy and contrast in vascular imaging. These findings may be particularly valuable for advancing the use of LSCI in clinical diagnostics and biomedical research, where high precision in blood flow monitoring is essential.
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