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A design methodology and device/circuit/architecture compatible simulation framework for low-power Magnetic Quantum Cellular Automata systems

机译:低功耗磁量子元胞自动机系统的设计方法和器件/电路/架构兼容的仿真框架

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CMOS device scaling is facing a daunting challenge with increased parameter variations and exponentially higher leakage current every new technology generation. Thus, researchers have started looking at alternative technologies. Magnetic Quantum Cellular Automata (MQCA) is such an alternative with switching energy close to thermal limits and scalability down to 5nm. In this paper, we present a circuit/architecture design methodology using MQCA. Novel clocking techniques and strategies are developed to improve computation robustness of MQCA systems. We also developed an integrated device/circuit/system compatible simulation framework to evaluate the functionality and the architecture of an MQCA based system and conducted a feasibility/comparison study to determine the effectiveness of MQCAs in digital electronics. Simulation results of an 8-bit MQCA-based Discrete Cosine Transform (DCT) with novel clocking and architecture show up to 290X and 46X improvement (at iso-delay and optimistic assumption) over 45nm CMOS in energy consumption and area, respectively.
机译:随着新技术的不断发展,CMOS器件的缩放面临巨大的挑战,参数变化越来越大,泄漏电流呈指数增长。因此,研究人员开始研究替代技术。磁性量子细胞自动机(MQCA)是这样的替代产品,其开关能量接近热极限,并且可扩展性低至5nm。在本文中,我们提出了使用MQCA的电路/架构设计方法。开发了新的时钟技术和策略来提高MQCA系统的计算鲁棒性。我们还开发了一个集成的设备/电路/系统兼容的仿真框架,以评估基于MQCA的系统的功能和体系结构,并进行了可行性/比较研究,以确定MQCA在数字电子产品中的有效性。具有新颖时钟和架构的基于8位MQCA的离散余弦变换(DCT)的仿真结果显示,在45nm CMOS的能耗和面积上,分别提高了290倍和46倍(在等延迟和乐观假设下)。

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