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Simultaneous Scalp Electroencephalography EEG, Electromyography EMG, and Whole-body Segmental Inertial Recording for Multi-modal Neural Decoding
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Simultaneous Scalp Electroencephalography EEG, Electromyography EMG, and Whole-body Segmental Inertial Recording for Multi-modal Neural Decoding

Published on: July 26, 2013

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Real-Time Artifact Suppression in Neuromodulation: A Model-Based Approach

Yousef Salimpour, Toren Arginteanu, Kimberley Wyse-Sookoo

    Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference
    |December 3, 2025
    PubMed

    Abstract:

    Closed-loop neuromodulation is a promising technique for treating neurological disorders such as Parkinson's disease and epilepsy. However, induced electrical stimulation artifacts remain one of the main challenges of closed-loop neuromodulation technology. Existing methods for removing these artifacts are not robust enough to restore the lost spectral and statistical characteristics of neural recordings and are not efficient enough for real-time applications. In this study, we propose a novel artifact reduction method based on the modeling of the brain signals that can remove stimulus artifacts from both cortical and subcortical recordings. We demonstrate the effectiveness of our method using data recorded from the human motor cortex and subthalamic nucleus. Our method restores the original neural recording by removing the stimulus-induced artifact and preserves the spectral features of the cortical and subcortical neuronal activities, which are essential for many types of closed-loop neuromodulation. Our method has the potential to enhance the performance of closed-loop brain stimulation by providing artifact-free neural signals and improving the efficiency of clinical treatments.Clinical Relevance- This study presents a novel artifact reduction method that enhances the accuracy of neural recordings during closed-loop neuromodulation. By effectively removing stimulation-induced artifacts while preserving critical features of neuronal activity, this approach enables more reliable neural signal interpretation. This method will enable neuromodulation therapies that utilize real-time monitoring of neurophysiologic data during stimulation for conditions such as Parkinson's disease and epilepsy, ultimately optimizing treatment outcomes and enhancing patient care.

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