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An Energy-Efficient Memristive Threshold Logic Circuit

机译:节能型忆阻门限逻辑电路

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Researchers have claimed that the memristor, the fourth fundamental circuit element, can be used for computing. In this work, we utilize memristors as weights in the realization of low-power Field Programmable Gate Arrays (FPGAs) using threshold logic which is necessary not only for low power embedded systems, but also realizing biological applications using threshold logic. Boolean functions, which are subsets of threshold functions, can be implemented using the proposed Memristive Threshold Logic (MTL) gate, whose functionality can be configured by changing the weights (memristance). A CAD framework is also developed to map the weights of a threshold gate to corresponding memristance values and synthesize logic circuits using MTL gates. Performance of the MTL gates at the circuit and logic levels is also evaluated using this CAD framework using ISCAS-85 combinational benchmarking circuits. This work also provides solutions based on device options and refreshing memristance, against drift in memristance, which can be a potential problem during operation. Comparisons with the existing CMOS look-up-table (LUT) and capacitor threshold logic (CTL) gates show that MTL gates exhibit less energy-delay product by at least 90 percent.
机译:研究人员声称,忆阻器是第四种基本电路元件,可用于计算。在这项工作中,我们利用忆阻器作为阈值逻辑实现低功率现场可编程门阵列(FPGA)的权重,这不仅是低功率嵌入式系统所必需的,而且还需要使用阈值逻辑来实现生物应用。布尔函数是阈值函数的子集,可以使用建议的忆阻阈值逻辑(MTL)门来实现,其功能可以通过更改权重(忆阻)进行配置。还开发了一个CAD框架,以将阈值门的权重映射到相应的忆阻值,并使用MTL门来合成逻辑电路。 MTL门在电路和逻辑级别的性能也可以通过使用ISCAS-85组合基准测试电路的CAD框架进行评估。这项工作还提供了基于设备选项和刷新忆阻的解决方案,以防止忆阻漂移(这可能是操作期间的潜在问题)。与现有的CMOS查找表(LUT)和电容器阈值逻辑(CTL)门的比较表明,MTL门显示的能量延迟乘积至少降低了90%。

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