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Energy-minimum sub-threshold self-timed circuits using current-sensing completion detection

机译:使用电流感应完成检测的能量最小亚阈值自定时电路

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This study addresses the design of self-timed energy-minimum circuits, operating in the sub-VT domain and a generic implementation template using bundled-data circuitry and current sensing completion detection (CSCD). Furthermore, a fully decoupled latch controller was developed, which integrates with the current-sensing circuitry. Different configurations that utilise the proposed latch controller are highlighted. A contemporary synchronous electronic design automation tools-based design flow, which transforms a synchronous design into a corresponding self-timed circuit, is outlined. Different use cases of the CSCD system are examined. The design flow and the current-sensing technique are validated by the implementation of a self-timed version of a wavelet-based event detector for cardiac pacemaker applications in a standard 65 nm CMOS process. The chip was fabricated and verified to operate down to 250 mV. Spice simulations indicate a gain of 52.58% in throughput because of asynchronous operation. By trading the throughput improvement, energy dissipation is reduced by 16.8% at the energy-minimum supply voltage.
机译:这项研究解决了自定时最小能耗电路的设计,该电路在sub-VT域中运行,并使用捆绑数据电路和电流感应完成检测(CSCD)来实现通用实现模板。此外,开发了一种完全解耦的闩锁控制器,该控制器与电流感应电路集成在一起。突出显示了利用所提出的锁存器控制器的不同配置。概述了基于当代同步电子设计自动化工具的设计流程,该流程将同步设计转换为相应的自定时电路。研究了CSCD系统的不同用例。通过在标准65 nm CMOS工艺中为心脏起搏器应用实现基于小波的事件检测器的自定时版本,可以验证设计流程和电流感应技术。芯片被制造出来并经过验证可在低至250 mV的电压下工作。 Spice仿真表明,由于异步操作,吞吐量提高了52.58%。通过提高吞吐量,在能量最小的电源电压下,能量消耗减少了16.8%。

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