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Seizure detection, prediction and prevention using neurostimulation technology and deep neural network

机译:使用神经刺激技术和深度神经网络的癫痫发作检测,预测和预防

摘要

A method for neuromodulation includes monitoring brain activity of a patient using one or more electrodes attached to the patient, and using a first machine learning model to predict whether a patient will have a seizure based on the monitored brain activity of the patient. The method also includes, responsive to the first machine learning model predicting that the patient will have a seizure, using a second machine learning model to determine a neuromodulation signal pattern for preventing the predicted seizure. The method further includes using a neurostimulator to apply the determined neuromodulation signal pattern to the patient. The method also includes, after applying the determined neuromodulation signal pattern to the patient, detecting whether the patient had the predicted seizure based on the monitored brain activity of the patient. The method further includes adjusting at least the second machine learning model based on whether the patient had the predicted seizure.
机译:用于神经调节的方法包括:使用附接到患者的一个或多个电极来监视患者的脑活动;以及使用第一机器学习模型基于所监视的患者的脑活动来预测患者是否会发作。该方法还包括响应于第一机器学习模型预测患者将发作,使用第二机器学习模型来确定神经调制信号模式以防止预测的癫痫发作。该方法还包括使用神经刺激器将确定的神经调节信号模式施加给患者。该方法还包括,在将确定的神经调节信号模式应用于患者之后,基于所监视的患者的脑活动来检测患者是否具有预测的癫痫发作。该方法还包括基于患者是否患有预测的癫痫发作至少调整第二机器学习模型。

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