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Tradeoffs between wireless communication and computation in closed-loop implantable devices

机译:闭环可植入设备中无线通信与计算之间的权衡

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This paper discusses general tradeoffs between wireless communication and computation in closed-loop implantable medical devices for neurological applications. Closed-loop devices enable neural monitoring, automated diagnostics and treatment of neurological disorders. Several topologies for the loop a re discussed, including within the implant, as well as implemented with a wearable, handheld or stationary processor. Common wireless communication data rate and range requirements and algorithmic computational requirements are summarized. As a case study, a 0.13 μm CMOS neurostimulator SoC for closed-loop treatment of intractable epilepsy is presented. Its triple-band radio with a 1m 230Mbps pulse-radio, a 2m 46Mbps pulse-radio 2, and a 10m 1.2Mbps FSK radio provides a versatile transcutaneous interface. The in-implant processor has constrained computational resources which results in a limited detection performance - seizure detection sensitivity of 87%. A higher-performance signal processing algorithm implemented on a stationary device within a loop enhances the seizure detection performance which was improved to a sensitivity of 98% with three times fewer false alarms. This comes at the cost of an increased wireless transmitter power budget, if communicated directly. These results illustrate a fundamental tradeoff between the communication and computation in closed-loop electronic therapies for neurological disorders.
机译:本文讨论了用于神经系统应用的闭环植入医疗设备中无线通信与计算的一般权衡。闭环装置使神经监测,自动化诊断和神经疾病治疗。用于RE RE讨论的循环的几个拓扑,包括在植入物内,以及用可穿戴,手持或固定处理器实现。概述了常见的无线通信数据速率和范围要求和算法计算要求。作为一个案例研究,提出了一种0.13μm的CMOS神经刺激器SOC,用于闭环性癫痫的闭环处理。其三频段无线电,具有1M 230Mbps的脉冲无线电,2M 46Mbps脉冲无线电2和10M 1.2Mbps FSK无线电提供多功能的经皮接口。植入物处理器具有约束的计算资源,从而导致有限的检测性能 - 癫痫发作检测灵敏度为87%。在环路内的固定装置上实现的更高性能信号处理算法增强了癫痫发作检测性能,该性能提高到98%的灵敏度,误报的三倍。这是由于直接传达的无线发射器电源预算增加的成本。这些结果说明了神经障碍闭环电子疗法的通信和计算之间的基本权衡。

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