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用于时间分辨漫射光学测量的反射几何结构中仪器响应函数的获取。

Instrument response function acquisition in reflectance geometry for time-resolved diffuse optical measurements.

作者信息

Pirovano Ileana, Re Rebecca, Candeo Alessia, Contini Davide, Torricelli Alessandro, Spinelli Lorenzo

机构信息

Politecnico di Milano, Dipartimento di Fisica, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.

Consiglio Nazionale delle Ricerche, Istituto di Fotonica e Nanotecnologie, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.

出版信息

Biomed Opt Express. 2019 Dec 13;11(1):240-250. doi: 10.1364/BOE.380996. eCollection 2020 Jan 1.

Abstract

In time-domain diffuse optical spectroscopy, the simultaneous acquisition of the time-of-flight distribution (DTOF) of photons traveling in a diffusive medium and of the instrument response function (IRF) is necessary to perform quantitative measurements of optical properties (absorption and reduced scattering coefficients) while taking into account the non-idealities of a real system ( temporal resolution and time delays). The IRF acquisition can be a non-trivial and time-consuming operation that requires directly facing the injection and collection fibers. Since this operation is not always possible, a new IRF measurement scheme is here proposed where the IRF is acquired in reflectance geometry from a corrugate reflective surface. Validation measurements on a set of reference homogenous phantoms have been performed, resulting in an error in the optical properties estimation lower than 10% with respect to the typical IRF configuration. Thus, the proposed method proved to be a reliable approach that after a preliminary calibration can be exploited in a laboratory and clinical set-ups, leading to faster and more accurate measurements and reducing the operator-dependent performance.

摘要

在时域漫射光学光谱中,为了在考虑实际系统的非理想性(时间分辨率和时间延迟)的情况下对光学特性(吸收系数和约化散射系数)进行定量测量,同时获取在扩散介质中传播的光子的飞行时间分布(DTOF)和仪器响应函数(IRF)是必要的。IRF采集可能是一项复杂且耗时的操作,需要直接面对注入光纤和收集光纤。由于这种操作并非总是可行,本文提出了一种新的IRF测量方案,其中IRF是在反射几何结构中从波纹反射表面获取 的。已对一组参考均匀体模进行了验证测量,结果表明,相对于典型的IRF配置,光学特性估计中的误差低于10%。因此,所提出的方法被证明是一种可靠的方法,经过初步校准后可用于实验室和临床设置,从而实现更快、更准确的测量,并降低操作员依赖的性能。

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