Duke University, Department of Biomedical Engineering, Durham, North Carolina 27708, USA.
J Biomed Opt. 2011 Jan-Feb;16(1):011010. doi: 10.1117/1.3524303.
Diffuse reflectance spectroscopy with a fiber optic probe is a powerful tool for quantitative tissue characterization and disease diagnosis. Significant systematic errors can arise in the measured reflectance spectra and thus in the derived tissue physiological and morphological parameters due to real-time instrument fluctuations. We demonstrate a novel fiber optic probe with real-time, self-calibration capability that can be used for UV-visible diffuse reflectance spectroscopy in biological tissue in clinical settings. The probe is tested in a number of synthetic liquid phantoms over a wide range of tissue optical properties for significant variations in source intensity fluctuations caused by instrument warm up and day-to-day drift. While the accuracy for extraction of absorber concentrations is comparable to that achieved with the traditional calibration (with a reflectance standard), the accuracy for extraction of reduced scattering coefficients is significantly improved with the self-calibration probe compared to traditional calibration. This technology could be used to achieve instrument-independent diffuse reflectance spectroscopy in vivo and obviate the need for instrument warm up and post∕premeasurement calibration, thus saving up to an hour of precious clinical time.
光纤探头漫反射光谱学是一种用于定量组织特征和疾病诊断的强大工具。由于实时仪器波动,在测量的反射光谱中会出现显著的系统误差,从而导致衍生的组织生理和形态参数出现误差。我们展示了一种具有实时自校准功能的新型光纤探头,可用于临床环境中生物组织的紫外可见漫反射光谱学。该探头在广泛的组织光学特性范围内的多种合成液体模型中进行了测试,以测试由于仪器预热和日常漂移导致的光源强度波动的显著变化。虽然吸收浓度的提取精度与传统校准(反射率标准)相当,但与传统校准相比,自校准探头在提取散射系数方面的精度有了显著提高。该技术可用于实现体内仪器独立的漫反射光谱学,并避免仪器预热和测量前后校准的需要,从而节省宝贵的临床时间长达一个小时。