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A low complexity patient-specific threshold based accelerator for the Grand-mal seizure disorder

机译:针对复杂性癫痫发作的低复杂度患者特定阈值加速器

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This paper presents a 2-channel electroencephalograph (EEG) based seizure detection accelerator suitable for long-term continuous monitoring of patients suffering from the Grand-mal seizure disorder. The implementation is based on the novel slope based detection (SBD) algorithm to achieve start and end of seizure detection. The proposed SBD algorithm is verified experimentally using a full FPGA implementation with patients' recordings from Physionet Children Hospital Boston (CHB)-MIT EEG database with real-time seizure, information display on the Android phone through a low-power Bluetooth link. The patient-specific detection with specific threshold results in sensitivity, specificity, system latency, and detection latency of 91.2%, 93.6%, 0.5s, and 29.25 s, respectively, using the CHB-MIT EEG database.
机译:本文提出了一种基于2通道脑电图(EEG)的癫痫发作检测加速器,适用于长期连续监测患有Grand-mal癫痫发作的患者。该实现基于新颖的基于坡度的检测(SBD)算法来实现癫痫发作检测的开始和结束。所提出的SBD算法使用完整的FPGA实现进行了实验验证,并带有来自波士顿Physionet儿童医院(CHB)-MIT EEG数据库的患者记录,并实时捕获,信息通过低功耗蓝牙链接显示在Android手机上。使用CHB-MIT EEG数据库,具有特定阈值的患者特定检测导致灵敏度,特异性,系统潜伏期和检测潜伏期分别为91.2 \%,93.6 \%,0.5s和29.25 s。

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