| Literature DB >> 26861347 |
Chi-Chun Lo1,2, Tsung-Yi Chien3, Yu-Chun Chen4, Shang-Ho Tsai5, Wai-Chi Fang6, Bor-Shyh Lin7,8.
Abstract
Motor imagery-based brain-computer interface (BCI) is a communication interface between an external machine and the brain. Many kinds of spatial filters are used in BCIs to enhance the electroencephalography (EEG) features related to motor imagery. The approach of channel selection, developed to reserve meaningful EEG channels, is also an important technique for the development of BCIs. However, current BCI systems require a conventional EEG machine and EEG electrodes with conductive gel to acquire multi-channel EEG signals and then transmit these EEG signals to the back-end computer to perform the approach of channel selection. This reduces the convenience of use in daily life and increases the limitations of BCI applications. In order to improve the above issues, a novel wearable channel selection-based brain-computer interface is proposed. Here, retractable comb-shaped active dry electrodes are designed to measure the EEG signals on a hairy site, without conductive gel. By the design of analog CAR spatial filters and the firmware of EEG acquisition module, the function of spatial filters could be performed without any calculation, and channel selection could be performed in the front-end device to improve the practicability of detecting motor imagery in the wearable EEG device directly or in commercial mobile phones or tablets, which may have relatively low system specifications. Finally, the performance of the proposed BCI is investigated, and the experimental results show that the proposed system is a good wearable BCI system prototype.Entities:
Keywords: brain-computer interface; channel selection; motor imagery; spatial filter
Mesh:
Year: 2016 PMID: 26861347 PMCID: PMC4801589 DOI: 10.3390/s16020213
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Basic scheme (a) and photograph (b) of proposed wearable motor-imagery brain-computer interface.
Figure 2(a) Structure of the wearable mechanical design; and (b) locations; (c) photograph and (d) basic scheme of retractable comb-shaped dry active electrodes.
Figure 3Block diagram (a,b) photograph of proposed wireless EEG acquisition module; and (c) basic schematic of analog CAR spatial filter circuit.
Figure 4Illustration of the procedure of channel selection algorithm.
Figure 5(a) EEG signals and (b) EEG spectra for the experiment of alpha rhythm; and (c) their coherence corresponding to different frequencies.
Figure 6EEG signals and EEG spectra for SSVEP experiment with (a) 8 Hz; (b) 10 Hz; and (c) 12 Hz flashing light sources.
Figure 7Comparison of ERD quantifications recorded at C3 by using retractable comb-shape dry active electrodes and wet electrodes for right hand motor imagery.
Figure 8Experimental results for (a) locations and (b) ERD quantifications of selected EEG channels; and (c) averaged ERD quantifications of each EEG channel for the right and the left hand motor imagery.
Figure 9Experimental results for PPV, sensitivity, and F-measure of detecting (a) all motor imagery; (b) right hand motor imagery; and (c) left hand motor imagery.
Comparison between other BCI systems and the proposed BCI.
| Lan | Arvaneh | Pfurtscheller | Kus | Obermaier | Proposed BCI | |
|---|---|---|---|---|---|---|
| Accuracy (%) | 80 | 81/82 | 65 | 74.8 | - | 71.1 |
| Bit rate(bits/min) | - | - | - | 4.5 | 3.1 | 3.2 |
| EEG features | Power spectral density | Common spatial pattern | Band power estimation | Spectral power estimation | EEG Pattern | EEG Power |
| Number of EEG channels | 32 | 22/118 | 32 | - | 29 | 8 |
| Function of channel selection | Yes | Yes | No | No | No | Yes |
| EEG sensor | EEG cup electrode | EEG cup electrode | EEG cup electrode | EEG cup electrode | EEG cup electrode | Noevl dry electrode |
| Main computing unit | Back-end computer | Back-end computer | Back-end computer | Back-end computer | Back-end computer | Front-end wearable EEG device |
| Wearable system | No | No | No | No | No | Yes |
| Wireless transmission | WiFi | No | No | No | No | Bluetooth |