A single channel-single trial P300 detection algorithm
محل انتشار: بیست و یکمین کنفرانس مهندسی برق ایران
سال انتشار: 1392
نوع سند: مقاله کنفرانسی
زبان: انگلیسی
مشاهده: 1,312
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شناسه ملی سند علمی:
ICEE21_155
تاریخ نمایه سازی: 27 مرداد 1392
چکیده مقاله:
A Brain Computer Interface (BCI) system allows the users to communicate with their surroundings without using any muscle activity. Many of these systems are based onthe analysis of Event Related Potentials (ERPs) such as P300. P300 speller is one of the common BCI systems which attract alot of attention; however, there are still a lot of flaws in these systems which should be considered. Since ERPs such as P300signals have a very low Signal to Noise Ratio (SNR), singletrial analysis of these signals is difficult and in many papers, denoising methods such as synchronous averaging wereproposed to reduce random noise; however, it reduces the communication rate greatly. Another major problem in manyBCI applications is the numerous number of channels needed to record EEG signals in order to have a reliable system. In this paper, a new method is presented to detect P300 signals through single channel data analysis and also it reaches an average accuracy of 65% in single trial P300 detection
نویسندگان
Neda Haghighatpanah
Isfahan University
Rasoul Amirfattahi
Isfahan University
Vahid Abootalebi
Yazd University
Behzad Nazari
Isfahan University