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A Digital Neurosynaptic Core Using Event-Driven QDI Circuits

机译:使用事件驱动的QDI电路的数字神经肌核心

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We design and implement a key building block of a scalable neuromorphic architecture capable of running spiking neural networks in compact and low-power hardware. Our innovation is a configurable neurosynaptic core that combines 256 integrate-and-fire neurons, 1024 input axons, and 1024x256 synapses in 4.2mm2 of silicon using a 45nm SOI process. We are able to achieve ultra-low energy consumption 1) at the circuit-level by using an asynchronous design where circuits only switch while performing neural updates, 2) at the core-level by implementing a 256 neural fan out in a single operation using a crossbar memory, and 3) at the architecture-level by restricting core-to-core communication to spike events, which occur relatively sparsely in time. Our implementation is purely digital, resulting in reliable and deterministic operation that achieves for the first time one-to-one correspondence with a software simulator. At 45pJ per spike, our core is readily scalable and provides a platform for implementing a wide array of real-time computations. As an example, we demonstrate a sound localization system using coincidence-detecting neurons.
机译:我们设计并实施一种能够在紧凑型和低功耗硬件中运行尖刺神经网络的可扩展神经形架构的关键构建块。我们的创新是一种可配置的神经突触核心,使用45nm SOI工艺将256个集成和防火神经元,1024个输入轴突和1024x256突出结合在4.2mm2中。我们能够通过使用异步设计在电路级别实现超低能耗1),其中通过在单个操作中实现256神经风扇在核心级时执行电路仅在核心级时执行电路。通过将核心到核心通信限制到峰值事件来跨核心通信,在架构级别的横杆内存和3)。我们的实现纯粹是数字的,导致可靠和确定性操作,该操作首次实现与软件模拟器的一对一对应。在每个尖峰45pj,我们的核心易于扩展,并为实现广泛的实时计算提供平台。作为一个例子,我们展示了使用巧合探测神经元的声音定位系统。

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