Investigating the generalizability of EEG-based Cognitive Load Estimation Across Visualizations

September 12, 2018 Β· Declared Dead Β· πŸ› International Conference on Multimodal Interaction

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Authors Viral Parekh, Maneesh Bilalpur, Sharavan Kumar, Stefan Winkler, C V Jawahar, Ramanathan Subramanian arXiv ID 1809.04507 Category cs.HC: Human-Computer Interaction Citations 6 Venue International Conference on Multimodal Interaction Last Checked 4 months ago
Abstract
We examine if EEG-based cognitive load (CL) estimation is generalizable across the character, spatial pattern, bar graph and pie chart-based visualizations for the nback~task. CL is estimated via two recent approaches: (a) Deep convolutional neural network, and (b) Proximal support vector machines. Experiments reveal that CL estimation suffers across visualizations motivating the need for effective machine learning techniques to benchmark visual interface usability for a given analytic task.
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