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Biomedical signal processing and control, 2019-09, Vol.54, p.101607, Article 101607
2019

Details

Autor(en) / Beteiligte
Titel
Accurate estimation of information transfer rate based on symbol occurrence probability in brain-computer interfaces
Ist Teil von
  • Biomedical signal processing and control, 2019-09, Vol.54, p.101607, Article 101607
Ort / Verlag
Elsevier Ltd
Erscheinungsjahr
2019
Link zum Volltext
Quelle
Alma/SFX Local Collection
Beschreibungen/Notizen
  • •Wolpaw’s ITR has limitation due to precondition of supposing the same probability for all symbols.•Proposed symbol probability-based formula was simplified for various hierarchical structures.•These formulas estimate ITR more accurately than Wolpaw’s definition in real-world application. The common criteria for evaluating the performance of the brain–computer interface (BCI) are classification accuracy and information transfer rate (ITR). Due to the fact that the BCI system has direct interaction with patients, the accuracy of estimated ITR is very influential. Although the most popular method for ITR estimation is the Wolpaw’s definition, the estimated ITR by this definition is often inaccurate in online applications. One of the existing limitations of it is that all symbols supposed to have the same occurrence probabilities, but symbols do not share the same probability in most real-world applications. In this paper, a comprehensive ITR formula is proposed based on symbol probabilities, using the general concept of mutual information. The Wolpaw’s definition leads to a strong ITR over-estimation compared to considering the symbol real occurrence probabilities. This estimation error increases with increasing classification accuracy and the number of symbols. For shorter required time to select one symbol, the ITR estimation error is also greater. The proposed Method estimates the ITR more accurately in online applications. The presented formulas provide simplified ITR definition based on symbol probabilities corresponding to a variety of BCI hierarchical structures.
Sprache
Englisch
Identifikatoren
ISSN: 1746-8094
eISSN: 1746-8108
DOI: 10.1016/j.bspc.2019.101607
Titel-ID: cdi_crossref_primary_10_1016_j_bspc_2019_101607

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