Aug 2026· Zenodo (CERN European Organization for Nuclear Research)
EEG and Brain-Computer Interfaces
Abstract
This paper investigates the potential of utilizing biofeedback signals, specifically electroencephalogram (EEG) and electrocardiogram (ECG) data, as inputs to design adaptive and personalized machine learning algorithms. The core concept involves translating biofeedback signals into adjustable parameters within a machine learning model. This process leverages reinforcement learning or genetic algorithms to iteratively optimize these parameters, thereby enhancing the algorithm's performance and tailoring it to individual user characteristics. The research aims to address the limitations of traditional machine learning approaches by incorporating real-time physiological data, leading to more dynamic and effective algorithms. The presented framework offers a novel approach to algorithm design, promising improved efficiency and accuracy in various applications. This work focuses solely on the theoretical design and conceptual implementation, without experimental validation.
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