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首页> 外文期刊>Circuits and Systems II: Express Briefs, IEEE Transactions on >A Neuromorphic Computational Primitive for Robust Context-Dependent Decision Making and Context-Dependent Stochastic Computation
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A Neuromorphic Computational Primitive for Robust Context-Dependent Decision Making and Context-Dependent Stochastic Computation

机译:鲁棒的上下文相关决策和上下文相关随机计算的神经形态计算基元

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摘要

The prefrontal cortex (PFC) plays an important role in complex cognitive computations, including planning and decision making. Although recurrent spiking neural network (SNN) software models of PFC have been successful in reproducing many of its cognitive computational aspects, little attention has been devoted to the question of how such systems can perform with low-resolution parameters and be robust to noise and variability in their input signals and state variables. Here, we present a mixed-signal analog/digital neuromorphic implementation of a state-dependent SNN architecture that addresses these issues by construction. The network relies on synaptic dis-inhibition to ensure robust decision making even in the face of very large variability. Depending on its connectivity, the network can either perform robustly in a deterministic way or exploit the device mismatch and noise to explore stochastically multiple states in constraint satisfaction problems (CSPs). We validate the architecture by mapping it onto a network of spiking neurons in a multi-core mixed-signal neuromorphic system and presenting experimental results for three different examples of CSPs.
机译:前额叶皮层(PFC)在复杂的认知计算(包括计划和决策)中起着重要作用。尽管PFC的递归尖峰神经网络(SNN)软件模型已经成功地重现了它的许多认知计算方面,但很少有人关注这样的系统如何以低分辨率参数执行并对噪声和可变性具有鲁棒性的问题。在他们的输入信号和状态变量。在这里,我们提出了状态相关的SNN架构的混合信号模拟/数字神经形态实现,该构造通过构造解决了这些问题。该网络依靠突触抑制来确保即使面对很大的可变性也能做出可靠的决策。取决于其连接性,网络可以确定性的方式稳定运行,或者利用设备不匹配和噪声来随机探索约束满足问题(CSP)中的多个状态。我们通过将其映射到多核混合信号神经形态系统中的尖峰神经元网络上并给出三个不同CSP示例的实验结果来验证该体系结构。

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