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Achieving Wave Pipelining in Spin Wave Technology

机译:旋转波技术实现波浪管线

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By their very nature, voltage/current excited Spin Waves (SWs) propagate through waveguides without consuming noticeable power. If SW excitation is performed by the continuous application of voltages/currents to the input, which is usually the case, the overall energy consumption is determined by the transducer power and the circuit critical path delay, which leads to high energy consumption because of SWs slowness. However, if transducers are operated in pulses the energy becomes circuit delay independent and it is mainly determined by the transducer power and delay, thus pulse operation should be targeted. In this paper, we utilize a 3-input Majority gate (MAJ) to investigate the Continuous Mode Operation (CMO), and Pulse Mode Operation (PMO). Moreover, we validate CMO and PMO 3-input Majority gate by means of micromagnetic simulations. Furthermore, we evaluate and compare the CMO and PMO Majority gate implementations in term of energy. The results indicate that PMO diminishes MAJ gate energy consumption by a factor of 18. In addition, we describe how PMO can open the road towards the utilization of the Wave Pipelining (WP) concept in SW circuits. We validate the WP concept by means of micromagnetic simulations and we evaluate its implications in term of throughput. Our evaluation indicates that for a circuit formed by four cascaded MAJ gates WP increases the throughput by 3.6x.
机译:通过其本质,电压/电流激发旋转波(SWS)通过波导传播而不会消耗显着的功率。如果通过将电压/电流的连续应用于输入的输入来执行SW激励,这通常是换能器功率和电路关键路径延迟决定的整体能量消耗,这导致由于SWS缓慢而导致高能耗。然而,如果在脉冲中操作换能器,则能量变为电路延迟独立,并且主要由换能器电源和延迟确定,因此应该针对脉冲操作。在本文中,我们利用了3输入多数门(Maj)来研究连续模式操作(CMO)和脉冲模式操作(PMO)。此外,我们通过微磁性模拟验证了CMO和PMO 3输入多数门。此外,我们在能量期间评估和比较CMO和PMO多数栅极实现。结果表明,PMO将MAJ栅极能量消耗减少了18倍。此外,我们描述了PMO如何在SW电路中朝着利用波流水线(WP)概念来开放通道。我们通过微磁性模拟验证WP概念,我们在吞吐量期间评估其含义。我们的评价表明,对于由四个级联的山雀山栅,WP形成的电路将吞吐量增加3.6倍。

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