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Design and comparison of NML systolic architectures

机译:NML收缩架构的设计和比较

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Nanomagnet Logic (NML) is a device architecture that utilizes the magnetization of nano-scale magnets to perform logical operations. NML has been experimentally demonstrated and operates at room temperature. Because the nanomagnets are non-volatile, as data flows through a circuit, it is inherently pipelined. This feature makes NML an excellent fit for systolic architectures, which could enable low-power, high-throughput systems that can address a variety of application-level tasks. When considering possible NML systolic systems, the underlying systolic clocking scheme affects both architectural design and performance. In this paper we explore these issues in the context of two NML designs for convolution. One design is based on a 3-phase clocking scheme and uni-directional dataflow, and another is based on a 2-phase clocking scheme and bi-directional dataflow. We compare the two NML systolic designs in terms of area, delay, and energy. We also compare the NML and CMOS implementations of the design in terms of energy and delay. Results are supported by physical level simulation.
机译:纳米磁体逻辑(NML)是一种利用纳米级磁体的磁化来执行逻辑操作的设备体系结构。 NML已通过实验证明并在室温下运行。因为纳米磁铁是非易失性的,所以当数据流经电路时,它固有地是流水线的。此功能使NML非常适合于脉动式体系结构,从而可以实现可解决各种应用程序级任务的低功耗,高吞吐量系统。在考虑可能的NML心脏收缩系统时,基础的心脏收缩时钟方案会影响体系结构设计和性能。在本文中,我们在两种用于卷积的NML设计的背景下探讨了这些问题。一种设计基于三相时钟方案和单向数据流,另一种设计基于2相时钟方案和双向数据流。我们在面积,延迟和能量方面比较了两种NML收缩设计。我们还从能量和延迟方面比较了该设计的NML和CMOS实现。结果得到物理水平模拟的支持。

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