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Session T3B: Tutorial: A self-powered biomedical SoC for wearable health care

机译:分会场T3B:教程:可穿戴式医疗保健的自供电生物医学SoC

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This talk will focus on Systems-on-Chip (SoCs) presented as part of the UAE SRC (Semiconductor Research Corp) Center of Excellence on Energy Efficient Electronic Systems (aka ACE4S http://www.src.org/program/grc/ace4s/) involving researchers from 5 UAE Universities looking at developing new technologies aiming at innovative self-powered wireless sensing and monitoring SoC platforms. The research targets applications in self-powered chip sets for use in public health, ambient intelligence, safety and security and water quality. ACE4S is the first SRC center of excellence outside the US. One such application, which we will discuss in details, is a novel SoC platform for wearable health care. More specifically we will present a novel fully integrated ECG signal processing system for the prediction of ventricular arrhythmia using a unique set of ECG features extracted from two consecutive cardiac cycles. Two databases of the heart signal recordings from the American Heart Association (AHA) and the MIT PhysioNet were used as training, test and validation sets to evaluate the performance of the proposed system. The system achieved an accuracy of 99%. The ECG signal is sensed using a flexible, dry, MEMS-based technology and the system is powered up by harvesting human thermal energy. The system architecture is implemented in Global foundries' 65 nm CMOS process, occupies 0.112 mm2 and consumes 2.78 micro Watt at an operating frequency of 10 KHz and from a supply voltage of 1.2V. To our knowledge, this is the first SoC implementation of an ECGbased processor that is capable of predicting ventricular arrhythmia hours before the onset and with an accuracy of 99%.
机译:本演讲将重点讨论作为阿联酋SRC(半导体研究公司)节能电子系统卓越中心(又称为ACE4S,http://www.src.org/program/grc/)的一部分介绍的片上系统(SoC)。 ace4s /)吸引了来自阿联酋5所大学的研究人员,他们致力于开发针对创新型自供电无线传感和监控SoC平台的新技术。该研究的目标是自供电芯片组中的应用,以用于公共卫生,环境情报,安全保障和水质。 ACE4S是美国以外第一个SRC卓越中心。我们将详细讨论的一个这样的应用是可穿戴医疗保健的新型SoC平台。更具体地说,我们将展示一种新颖的完全集成的ECG信号处理系统,该系统使用从两个连续的心动周期中提取的一组独特的ECG功能来预测室性心律不齐。来自美国心脏协会(AHA)和MIT PhysioNet的两个心脏信号记录数据库被用作训练,测试和验证集,以评估所提出系统的性能。该系统达到了99%的精度。使用基于MEMS的灵活,干燥技术来检测ECG信号,并通过收集人的热能为系统供电。该系统架构以Global Foundries的65 nm CMOS工艺实现,占地0.112 mm2,在10 KHz的工作频率和1.2V的电源电压下消耗2.78微瓦。据我们所知,这是基于ECG的处理器的第一个SoC实施,该处理器能够预测发病前几小时的室性心律失常,其准确率达到99%。

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