Time-resolved near-infrared spectroscopy (TR-NIRS) measurements can be used to recover changes in concentrations of tissue constituents ( ÎC ) by applying the moments method and the Beer-Lambert law. In this work we carried out the error propagation analysis allowing to calculate the standard deviations of uncertainty in estimation of the ÎC . Here, we show the process of choosing wavelengths for the evaluation of hemodynamic (oxy-, deoxyhemoglobin) and metabolic (cytochrome-c-oxidase (CCO)) responses within the brain tissue as measured with an in-house developed TR-NIRS multi-wavelength system, which measures at 16 consecutive wavelengths separated by 12.5â nm and placed between 650 and 950â nm. Data generated with Monte Carlo simulations on three-layered model (scalp, skull, brain) for wavelengths range from 650 to 950â nm were used to carry out the error propagation analysis for varying choices of wavelengths. For a detector with a spectrally uniform responsivity, the minimal standard deviation of the estimated changes in CCO within the brain layer, ÏÎCCCObrain â=â0.40 µM, was observed for the 16 consecutive wavelengths from 725 to 912.5â nm. For realistic a detector model, i.e. the spectral responsivity characteristic is considered, the minimum, ÏÎCCCObrain â=â0.47 µM, was observed at the 16 consecutive wavelengths from 688 to 875â nm. We introduce the method of applying the error propagation analysis to data as measured with spectral TR-NIRS systems to calculate uncertainty of recovery of tissue constituents concentrations.
Depth-resolved assessment of changes in concentration of chromophores using time-resolved near-infrared spectroscopy: estimation of cytochrome-c-oxidase uncertainty by Monte Carlo simulations.
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作者:Sudakou Aleh, Wojtkiewicz Stanislaw, Lange Frédéric, Gerega Anna, Sawosz Piotr, Tachtsidis Ilias, Liebert Adam
| 期刊: | Biomedical Optics Express | 影响因子: | 3.200 |
| 时间: | 2019 | 起止号: | 2019 Aug 16; 10(9):4621-4635 |
| doi: | 10.1364/BOE.10.004621 | ||
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