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1.
Comput Intell Neurosci ; 2017: 9817305, 2017.
Article in English | MEDLINE | ID: mdl-29348744

ABSTRACT

We present an improvement to the quaternion-based signal analysis (QSA) technique to extract electroencephalography (EEG) signal features with a view to developing real-time applications, particularly in motor imagery (IM) cognitive processes. The proposed methodology (iQSA, improved QSA) extracts features such as the average, variance, homogeneity, and contrast of EEG signals related to motor imagery in a more efficient manner (i.e., by reducing the number of samples needed to classify the signal and improving the classification percentage) compared to the original QSA technique. Specifically, we can sample the signal in variable time periods (from 0.5 s to 3 s, in half-a-second intervals) to determine the relationship between the number of samples and their effectiveness in classifying signals. In addition, to strengthen the classification process a number of boosting-technique-based decision trees were implemented. The results show an 82.30% accuracy rate for 0.5 s samples and 73.16% for 3 s samples. This is a significant improvement compared to the original QSA technique that offered results from 33.31% to 40.82% without sampling window and from 33.44% to 41.07% with sampling window, respectively. We can thus conclude that iQSA is better suited to develop real-time applications.


Subject(s)
Algorithms , Brain Waves/physiology , Brain-Computer Interfaces , Brain/physiology , Imagination , Signal Processing, Computer-Assisted , Brain Mapping , Electroencephalography , Female , Functional Laterality , Humans , Male , Movement , Photic Stimulation
2.
Sensors (Basel) ; 16(3)2016 Mar 05.
Article in English | MEDLINE | ID: mdl-26959029

ABSTRACT

Quaternions can be used as an alternative to model the fundamental patterns of electroencephalographic (EEG) signals in the time domain. Thus, this article presents a new quaternion-based technique known as quaternion-based signal analysis (QSA) to represent EEG signals obtained using a brain-computer interface (BCI) device to detect and interpret cognitive activity. This quaternion-based signal analysis technique can extract features to represent brain activity related to motor imagery accurately in various mental states. Experimental tests in which users where shown visual graphical cues related to left and right movements were used to collect BCI-recorded signals. These signals were then classified using decision trees (DT), support vector machine (SVM) and k-nearest neighbor (KNN) techniques. The quantitative analysis of the classifiers demonstrates that this technique can be used as an alternative in the EEG-signal modeling phase to identify mental states.


Subject(s)
Brain Mapping/instrumentation , Brain-Computer Interfaces , Cognition/physiology , Electroencephalography/instrumentation , Brain/physiology , Humans , Movement/physiology , Support Vector Machine
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