首页> 美国卫生研究院文献>Frontiers in Neuroscience >Is a 4-Bit Synaptic Weight Resolution Enough? – Constraints on Enabling Spike-Timing Dependent Plasticity in Neuromorphic Hardware
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Is a 4-Bit Synaptic Weight Resolution Enough? – Constraints on Enabling Spike-Timing Dependent Plasticity in Neuromorphic Hardware

机译:4位突触权重分辨率是否足够? –在神经形态硬件中启用峰值计时相关可塑性的约束

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摘要

Large-scale neuromorphic hardware systems typically bear the trade-off between detail level and required chip resources. Especially when implementing spike-timing dependent plasticity, reduction in resources leads to limitations as compared to floating point precision. By design, a natural modification that saves resources would be reducing synaptic weight resolution. In this study, we give an estimate for the impact of synaptic weight discretization on different levels, ranging from random walks of individual weights to computer simulations of spiking neural networks. The FACETS wafer-scale hardware system offers a 4-bit resolution of synaptic weights, which is shown to be sufficient within the scope of our network benchmark. Our findings indicate that increasing the resolution may not even be useful in light of further restrictions of customized mixed-signal synapses. In addition, variations due to production imperfections are investigated and shown to be uncritical in the context of the presented study. Our results represent a general framework for setting up and configuring hardware-constrained synapses. We suggest how weight discretization could be considered for other backends dedicated to large-scale simulations. Thus, our proposition of a good hardware verification practice may rise synergy effects between hardware developers and neuroscientists.
机译:大型神经形态硬件系统通常在细节级别和所需芯片资源之间进行权衡。特别是在实现依赖于尖峰时序的可塑性时,与浮点精度相比,资源的减少会导致局限性。通过设计,节省资源的自然修改将降低突触权重分辨率。在这项研究中,我们给出了突触权重离散化对不同水平的影响的估计,范围从单个权重的随机游动到尖峰神经网络的计算机模拟。 FACETS晶圆级硬件系统可提供4位突触权重的分辨率,这在我们的网络基准测试范围内已足够。我们的发现表明,鉴于对定制混合信号突触的进一步限制,提高分辨率甚至可能没有用。另外,在本研究的背景下,对由于生产缺陷而引起的变化进行了研究,并显示出它们是非关键的。我们的结果代表了用于设置和配置硬件受限突触的通用框架。我们建议对于专门用于大型仿真的其他后端,如何考虑权重离散化。因此,我们关于好的硬件验证实践的主张可能会提高硬件开发人员和神经科学家之间的协同效应。

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