Mathematical modeling and analysis for tissue curvature correction in near-infrared spectroscopy imaging.

IF 2.9 3区 医学 Q2 BIOCHEMICAL RESEARCH METHODS
Journal of Biomedical Optics Pub Date : 2025-09-01 Epub Date: 2025-09-19 DOI:10.1117/1.JBO.30.9.096002
Himaddri Shakhar Roy, Daniela Leizaola, Charles Policard, Anuradha Godavarty
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引用次数: 0

Abstract

Significance: Near-infrared spectroscopy (NIRS) imaging modalities are used to provide noncontact measurements of tissue oxygenation in diabetic foot ulcers. However, the curved surface of the diabetic foot introduces inaccurate tissue oxygenation measurement. The changes in spatial NIRS optical measurements may result from variations in the underlying physiology or from the curvature of the tissue surface. Therefore, the effect of tissue curvature must be accounted for to ensure the accurate measurement of tissue oxygenation (or hemoglobin parameters) in clinical applications.

Aim: Our aim is to develop and validate mathematical curvature correction models to account for the effects of tissue curvature on diffuse reflectance (DR) in NIRS imaging and assess their effect on the hemoglobin parameters as well.

Approach: Monte-Carlo-based light propagation simulations were performed to develop correction models and applied to three-layered curved geometries in MCMatlab. Four curvature correction models based on height and/or angle were developed via Monte Carlo simulation studies. All the correction models were applied to the simulated DR signals obtained from various curved geometries (concave, convex, and wound-mimicking) using Gaussian light sources at 690 and 830 nm. The effect of correction models on DR signals and hemoglobin parameters was determined.

Results: Simulation results showed that a concave curved surface did not require correction, whereas convex and wound-mimicking geometries showed a reduced median error upon using an empirical height/angle correction model. In addition, the correction model also reduced the median error significantly for the oxygen-saturation-based hemoglobin parameter in both the convex and wound-mimicking geometries.

Conclusions: The developed mathematical model effectively corrected tissue curvature effects in NIRS DR signals and hemoglobin parameters for wound-mimicking irregular geometry. Ongoing work focuses on experimental validation of these correction models on curved phantoms, prior to in vivo imaging studies.

近红外光谱成像中组织曲率校正的数学建模与分析。
意义:近红外光谱(NIRS)成像模式用于提供糖尿病足溃疡组织氧合的非接触测量。然而,糖尿病足的曲面导致组织氧合测量不准确。空间近红外光学测量的变化可能是由于潜在生理学或组织表面曲率的变化引起的。因此,必须考虑组织曲率的影响,以确保在临床应用中准确测量组织氧合(或血红蛋白参数)。目的:我们的目的是开发和验证数学曲率校正模型,以解释组织曲率对近红外成像中漫反射(DR)的影响,并评估它们对血红蛋白参数的影响。方法:基于蒙特卡罗光传播模拟,建立校正模型,并在MCMatlab中应用于三层弯曲几何。通过蒙特卡罗仿真研究,建立了四种基于高度和/或角度的曲率校正模型。将校正模型应用于690 nm和830 nm高斯光源下不同弯曲几何形状(凹形、凸形和仿形伤口)的模拟DR信号。确定校正模型对DR信号和血红蛋白参数的影响。结果:模拟结果表明,凹曲面不需要校正,而凸和模仿伤口的几何形状在使用经验高度/角度校正模型时显示出较小的中位数误差。此外,校正模型还显著降低了基于氧饱和度的血红蛋白参数在凸形和仿创面几何形状中的中值误差。结论:建立的数学模型有效地修正了NIRS DR信号中的组织曲率效应和不规则几何形状的血红蛋白参数。正在进行的工作重点是在体内成像研究之前,在弯曲的幻影上对这些校正模型进行实验验证。
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来源期刊
CiteScore
6.40
自引率
5.70%
发文量
263
审稿时长
2 months
期刊介绍: The Journal of Biomedical Optics publishes peer-reviewed papers on the use of modern optical technology for improved health care and biomedical research.
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