Despite advances in neurosurgical and drug therapy procedures suggested for treating epilepsy, about 30% of patients are considered as refractory cases that remain non-responsive to treatments. In such cases, the patients experience seizures varying in severity and frequency, from one or fewer seizures per month to multiple seizures per day. This unpredictable nature of seizures and their potential threat to patients' lives calls for a sustainable solution for the long-term monitoring and real-time detection of epileptic seizures. Such a solution would allow caretakers and physicians to monitor seizures' occurrence and severity, administer care in a timely fashion and intervene to prevent harm. In this work, we propose a deep learning-based approach for the automatic detection of a large variety of epileptic seizures, in real-time, and with high accuracy and low false positives. The proposed approach consists of a sophisticated Bi-LSTM deep learning model that uses as input 1
Pune, Maharashtra, September 14 2022 (Wiredrelease) Market.Biz –:Trends In E-Health Services Market Shaping The Industry Till 2030The E-Health Services industry has seen tremendous growth over the past few years and the outlook for 2022 is positive. The industry is projected to reach trillions in the next few years..
/PRNewswire/ The "Global Digital Health Market and Trends 2021" report has been added to ResearchAndMarkets.com s offering. Global B2B market shifts towards.
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