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Scaled resistively-coupled VO_2 oscillators for neuromorphic computing

机译:用于神经形态计算的缩放电阻耦合的VO_2振荡器

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New computation schemes inspired by biological processes are arising as an alternative to standard von-Neumann architectures, to provide hardware accelerators for information processing based on a neural networks approach. Systems of frequency-locked, coupled oscillators are investigated using the phase difference of the signal as the state variable rather than the voltage or current amplitude. As previously shown, these oscillating neural networks can efficiently solve complex and unstructured tasks such as image recognition. We have built nanometer scale relaxation oscillators based on the insulator-metal transition of VO2. Coupling these oscillators with an array of tunable resistors offers the perspective of realizing compact oscillator networks. In this work we show experimental coupling of two oscillators. The phase of the two oscillators could be reversibly altered between in-phase and out-of-phase oscillation upon changing the value of the coupling resistor, i.e. by tuning the coupling strength. The impact of the variability of the devices on the coupling performances are investigated across two generations of devices.
机译:通过生物过程启发的新计算方案是标准Von-Neumann架构的替代方案,为基于神经网络方法提供信息处理的硬件加速器。使用作为状态变量的信号的相位差而不是电压或电流幅度来研究频锁的耦合耦合振荡器。如前所述,这些振荡神经网络可以有效地解决诸如图像识别之类的复杂和非结构化任务。根据VO2的绝缘金属转换,我们建立了纳米垢弛豫振荡器。使用可调谐电阻阵列耦合这些振荡器提供了实现紧凑振荡器网络的视角。在这项工作中,我们显示了两个振荡器的实验耦合。在改变耦合电阻器的值时,可以在相位和外相振荡之间可逆地改变两个振荡器的相位,即通过调谐耦合强度。在两代设备上研究了装置对耦合性能的可变性的影响。

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