Title : 
Motion artifact reduction in EEG recordings using multi-channel contact impedance measurements
         
        
            Author : 
Bertrand, Alexander ; Mihajlovic, Vojkan ; Grundlehner, Bernard ; Van Hoof, Chris ; Moonen, Marc
         
        
            Author_Institution : 
Dept. of Electr. Eng. ESAT/SCD, KU Leuven, Leuven, Belgium
         
        
        
            fDate : 
Oct. 31 2013-Nov. 2 2013
         
        
        
        
            Abstract : 
Dry-contact electrodes have paved the way for easy-to-use electroencephalography (EEG) systems with minimal setup time, which are of particular interest in ambulatory as well as real-life environments. However, the presence of motion artifacts forms a major obstacle for such systems. In previous studies, it has been shown that continuous electrode-tissue impedance monitoring can be used to handle motion artifacts. In this paper, we demonstrate that the in-phase and quadrature components of the contact impedance provide complementary information that can be used to improve the prediction of motion artifacts. Furthermore, we demonstrate that the prediction of motion artifacts at one electrode can be further improved by also incorporating the impedance measurements at other electrodes. With this, we propose a motion artifact reduction algorithm based on a multi-channel linear prediction (MLP) filter. Although the MLP filter is not able to completely remove motion artifacts, a substantial reduction can indeed be achieved.
         
        
            Keywords : 
biological tissues; biomedical electrodes; electroencephalography; medical signal processing; patient monitoring; EEG recordings; MLP filter; contact impedance; dry-contact electrodes; electrode-tissue impedance monitoring; electroencephalography systems; motion artifact reduction; motion artifact reduction algorithm; multichannel contact impedance measurements; multichannel linear prediction filter; quadrature components; Correlation; Electrodes; Electroencephalography; Impedance; Impedance measurement; Legged locomotion; Monitoring;
         
        
        
        
            Conference_Titel : 
Biomedical Circuits and Systems Conference (BioCAS), 2013 IEEE
         
        
            Conference_Location : 
Rotterdam
         
        
        
            DOI : 
10.1109/BioCAS.2013.6679688