International Journal of Neural Systems · 2018 · 77 citations · 77 references
The study introduces a vector phase diagram that separates the initial oxy‑hemoglobin dip from the delayed hemodynamic response in functional near‑infrared spectroscopy. The diagram plots HbO and HbR trajectories in polar coordinates, employs dual threshold circles to detect the initial dip, models the hemodynamic response with three gamma functions, and uses mean/min features of the dip with linear discriminant analysis for classifying finger‑tapping tasks in a brain‑computer interface. Applying the method to two finger‑tapping tasks revealed distinct, spatially specific activation maps and raised classification accuracy from 59 % to 74.9 %.
In this paper, a new vector phase diagram differentiating the initial decreasing phase (i.e. initial dip) and the delayed hemodynamic response (HR) phase of oxy-hemoglobin changes ([Formula: see text]HbO) of functional near-infrared spectroscopy (fNIRS) is developed. The vector phase diagram displays the trajectories of [Formula: see text]HbO and deoxy-hemoglobin changes ([Formula: see text]HbR), as orthogonal components, in the [Formula: see text]HbO–[Formula: see text]HbR polar coordinates. To determine the occurrence of an initial dip, dual threshold circles (an inner circle from the resting state, an outer circle from the peak values of the initial dip and the main HR) are incorporated into the phase diagram for making decisions. The proposed scheme is then applied to a brain–computer interface scheme, and its performance is evaluated in classifying two finger tapping tasks (right-hand thumb and little finger) from the left motor cortex. Three gamma functions are used to model the initial dip, the main HR, and the undershoot in generating the designed HR function. In classifying two tapping tasks, the signal mean and signal minimum values during 0–2.5[Formula: see text]s, as features of initial dip, are used. The linear discriminant analysis was utilized as a classifier. The experimental results show that the active brain locations of the two tasks were quite distinctive ([Formula: see text]), and moreover, spatially specific if using the initial dip map at 4[Formula: see text]s in comparison to the map of HRs at 14[Formula: see text]s. Also, the average classification accuracy was improved from 59% to 74.9% when using the phase diagram of dual threshold circles.
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Event-Related fMRI: Characterizing Differential Responses
Karl Friston, Paul C. Fletcher, Oliver Josephs et al. · NeuroImage · 1998 · 2.1K citations
Event-related Fmri, Brain Function, Neurobiological Factor +5