Brainsourcing: Crowdsourcing Recognition Tasks via Collaborative Brain-Computer Interfacing
Keith M. Davis, Lauri Kangassalo, Michiel M. A. Spapé, Tuukka Ruotsalo
Abstract
This paper introduces brainsourcing: utilizing brain responses of a group of human contributors each performing a recognition task to determine classes of stimuli. We investigate to what extent it is possible to infer reliable class labels using data collected utilizing electroencephalography (EEG) from participants given a set of common stimuli. An experiment (N=30) measuring EEG responses to visual features of faces (gender, hair color, age, smile) revealed an improved F1 score of 0.94 for a crowd of twelve participants compared to an F1 score of 0.67 derived from individual participants and a random chance of 0.50. Our results demonstrate the methodological and pragmatic feasibility of brainsourcing in labeling tasks and opens avenues for more general applications using brain-computer interfacing in a crowdsourced setting.
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- Collaborative Filtering with Preferences Inferred from Brain SignalsKeith M. Davis III, Michiel M. A. Spapé, Tuukka RuotsaloWWW 2021 · 19 citations
- Brain-Supervised Image EditingKeith M. Davis, Carlos de la Torre-Ortiz, Tuukka RuotsaloCVPR 2022 · 17 citations
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