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April 28, 2014International Journal of Neural Systems372 citations

A High-Speed Brain Speller Using Steady-State Visual Evoked Potentials

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MNMasaki NakanishiYWYijun WangYWYu-Te Wang

Key Points

  • This research investigates the feasibility of a high-speed spelling system using SSVEP and mixed coding techniques.
  • Developed a mixed frequency and phase coding strategy for target identification.
  • Implemented a multi-channel approach with Canonical Correlation Analysis (CCA) for improved accuracy.
  • Conducted a simulated online experiment with 13 subjects to test the spelling system.
  • Achieved an average information transfer rate (ITR) of 166.91 bits/min across 13 subjects.
  • Individual maximum ITR reached 192.26 bits/min, the highest reported for EEG-based BCIs.
  • Demonstrated the potential for practical application of high-speed SSVEP-based BCIs.

Abstract

Implementing a complex spelling program using a steady-state visual evoked potential (SSVEP)-based brain-computer interface (BCI) remains a challenge due to difficulties in stimulus presentation and target identification. This study aims to explore the feasibility of mixed frequency and phase coding in building a high-speed SSVEP speller with a computer monitor. A frequency and phase approximation approach was developed to eliminate the limitation of the number of targets caused by the monitor refresh rate, resulting in a speller comprising 32 flickers specified by eight frequencies (8-15 Hz with a 1 Hz interval) and four phases (0°, 90°, 180°, and 270°). A multi-channel approach incorporating Canonical Correlation Analysis (CCA) and SSVEP training data was proposed for target identification. In a simulated online experiment, at a spelling rate of 40 characters per minute, the system obtained an averaged information transfer rate (ITR) of 166.91 bits/min across 13 subjects with a maximum individual ITR of 192.26 bits/min, the highest ITR ever reported in electroencephalogram (EEG)-based BCIs. The results of this study demonstrate great potential of a high-speed SSVEP-based BCI in real-life applications.

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Cite This Study

Nakanishi et al. (2014) studied this question.

synapsesocial.com/papers/6a11d77f71528255b221a2b6https://doi.org/10.1142/s0129065714500191
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