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EEG waveform analysis of P300 ERP with applications to brain computer interfaces

Ramele, Rodrigo et al · RI ITBA · 2019

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"The Electroencephalography (EEG) is not just a mere clinical tool anymore. It has become the de-facto mobile, portable, non-invasive brain imaging sensor to harness brain information in real time. It is now being used to translate or decode brain signals, to diagnose diseases or to implement Brain Computer Interface (BCI) devices. The automatic decoding is mainly implemented by using quantitative algorithms to detect the cloaked information buried in the signal. However, clinical EEG is based intensively on waveforms and the structure of signal plots. Hence, the purpose of this work is to establish a bridge to fill this gap by reviewing and describing the procedures that have been used to detect patterns in the electroencephalographic waveforms, benchmarking them on a controlled pseudo-real dataset of a P300-Based BCI Speller and verifying their performance on a public dataset of a BCI Competition."

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APA 7

Ramele, R. E. A. (2019). EEG waveform analysis of P300 ERP with applications to brain computer interfaces. http://ri.itba.edu.ar/handle/20.500.14769/1578

MLA

Ramele, Rodrigo et al. "EEG waveform analysis of P300 ERP with applications to brain computer interfaces." 2019. http://ri.itba.edu.ar/handle/20.500.14769/1578.

Chicago

Ramele, Rodrigo et al. 2019. "EEG waveform analysis of P300 ERP with applications to brain computer interfaces.". http://ri.itba.edu.ar/handle/20.500.14769/1578.

Harvard

Ramele, R. E. A. 2019, EEG waveform analysis of P300 ERP with applications to brain computer interfaces, RI ITBA, available at: http://ri.itba.edu.ar/handle/20.500.14769/1578 [Accessed 7 Aug. 2026].

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Title
EEG waveform analysis of P300 ERP with applications to brain computer interfaces
Author / contributors
Ramele, Rodrigo et al
Publisher
RI ITBA
Publication year
2019
ISSN
2076-3425
ISSN
2076-3425
Language
English

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