Neurophotonics · 2015 · 320 citations · 35 references
EngineeringOptimum Source–detector DistanceFnirs MeasurementsShort-separation ChannelsFunctional Near-infrared SpectroscopyShort SeparationsInfrared OpticNeurologyInstrumentationBiophysicsRadiologyNeuroimaging ModalityPhysicsPhysiological OpticInfrared TechnologyInfrared SpectroscopyNeuroimagingNear-infrared SpectroscopyBiophotonicsCerebral Blood FlowBrain ImagingNeurophysiologyInfrared SensorSpectroscopyStandard Fnirs ChannelsBiomedical ImagingNeuroscienceMedicineSpectroscopic MethodInfrared Systems
Functional near‑infrared spectroscopy short‑separation channels sample extra‑cerebral tissues, improving the accuracy and reliability of fNIRS measurements. The study aims to capture superficial hemodynamics while remaining insensitive to brain activity. Using Monte Carlo photon‑transport simulations in anatomically informed multilayer models, the authors derived a look‑up plot that identifies the optimal source‑detector distance for short‑separation channels based on a chosen brain‑sensitivity ratio. When the short‑separation channel brain sensitivity is limited to 5% of the standard channel, the optimal distances are 8.4 mm for adults and 2.15 mm for term‑age infants.
In recent years, it has been demonstrated that using functional near-infrared spectroscopy (fNIRS) channels with short separations to explicitly sample extra-cerebral tissues can provide a significant improvement in the accuracy and reliability of fNIRS measurements. The aim of these short-separation channels is to measure the same superficial hemodynamics observed by standard fNIRS channels while also being insensitive to the brain. We use Monte Carlo simulations of photon transport in anatomically informed multilayer models to determine the optimum source-detector distance for short-separation channels in adult and newborn populations. We present a look-up plot that provides (for an acceptable value of short-separation channel brain sensitivity relative to standard channel brain sensitivity) the optimum short-separation distance. Though values vary across the scalp, when the acceptable ratio of the short-separation channel brain sensitivity to standard channel brain sensitivity is set at 5%, the optimum short-separation distance is 8.4 mm in the typical adult and 2.15 mm in the term-age infant.
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