TY - JOUR
T1 - Oscillatory Source Tensor Discriminant Analysis (OSTDA)
T2 - A regularized tensor pipeline for SSVEP-based BCI systems
AU - Jorajuría, Tania
AU - Jamshidi Idaji, Mina
AU - İşcan, Zafer
AU - Gómez, Marisol
AU - Nikulin, Vadim V.
AU - Vidaurre, Carmen
N1 - Publisher Copyright:
© 2021 The Authors
PY - 2022/7/1
Y1 - 2022/7/1
N2 - Periodic signals called Steady-State Visual Evoked Potentials (SSVEP) are elicited in the brain by flickering stimuli. They are usually detected by means of regression techniques that need relatively long trial lengths to provide feedback and/or sufficient number of calibration trials to be reliably estimated in the context of brain-computer interface (BCI). Thus, for BCI systems designed to operate with SSVEP signals, reliability is achieved at the expense of speed or extra recording time. Furthermore, regardless of the trial length, calibration free regression-based methods have been shown to suffer from significant performance drops when cognitive perturbations are present affecting the attention to the flickering stimuli. In this study we present a novel technique called Oscillatory Source Tensor Discriminant Analysis (OSTDA) that extracts oscillatory sources and classifies them using the newly developed tensor-based discriminant analysis with shrinkage. The proposed approach is robust for small sample size settings where only a few calibration trials are available. Besides, it works well with both low- and high-number-of-channel settings, using trials as short as one second. OSTDA performs similarly or significantly better than other three benchmarked state-of-the-art techniques under different experimental settings, including those with cognitive disturbances (i.e. four datasets with control, listening, speaking and thinking conditions). Overall, in this paper we show that OSTDA is the only pipeline among all the studied ones that can achieve optimal results in all analyzed conditions.
AB - Periodic signals called Steady-State Visual Evoked Potentials (SSVEP) are elicited in the brain by flickering stimuli. They are usually detected by means of regression techniques that need relatively long trial lengths to provide feedback and/or sufficient number of calibration trials to be reliably estimated in the context of brain-computer interface (BCI). Thus, for BCI systems designed to operate with SSVEP signals, reliability is achieved at the expense of speed or extra recording time. Furthermore, regardless of the trial length, calibration free regression-based methods have been shown to suffer from significant performance drops when cognitive perturbations are present affecting the attention to the flickering stimuli. In this study we present a novel technique called Oscillatory Source Tensor Discriminant Analysis (OSTDA) that extracts oscillatory sources and classifies them using the newly developed tensor-based discriminant analysis with shrinkage. The proposed approach is robust for small sample size settings where only a few calibration trials are available. Besides, it works well with both low- and high-number-of-channel settings, using trials as short as one second. OSTDA performs similarly or significantly better than other three benchmarked state-of-the-art techniques under different experimental settings, including those with cognitive disturbances (i.e. four datasets with control, listening, speaking and thinking conditions). Overall, in this paper we show that OSTDA is the only pipeline among all the studied ones that can achieve optimal results in all analyzed conditions.
KW - Analytical regularization
KW - Brain-computer interface
KW - Higher order discriminant analysis
KW - Spatio-spectral decomposition
KW - Steady-state visual evoked potential
KW - Tensor-based feature reduction
UR - https://www.scopus.com/pages/publications/85121973874
U2 - 10.1016/j.neucom.2021.07.103
DO - 10.1016/j.neucom.2021.07.103
M3 - Article
AN - SCOPUS:85121973874
SN - 0925-2312
VL - 492
SP - 664
EP - 675
JO - Neurocomputing
JF - Neurocomputing
ER -