Browse submitted Nengo models, components, and networks. Each entry is a self-contained, version-pinned, CI-tested package — drop it into your own project, or open it in NengoGUI to watch it run. Got one of your own to share? Read the submission guide →
basal-ganglia
networkA spiking neural model of the basal ganglia performing action selection, implementing the direct and indirect pathways through StrD1, StrD2, STN, GPe, and GPi nuclei. Drop-in subnetwork: feed in a utility vector, read out a one-hot selection signal.
controlled-oscillator
modelA 3D recurrent ensemble that implements a 2D oscillator whose angular speed is gated by the third dimension. A separate input ensemble drives that speed, demonstrating how one neural population can control the dynamic regime of another.
lamprey
modelA spiking neural model of the lamprey locomotion control module from the Neural Engineering Framework. A 3D damped-oscillator central pattern generator (CPG) drives 10D muscle tensions through a basis-function decoding, producing the traveling-wave swimming pattern characteristic of lamprey undulation.
lmu
modelA Legendre Memory Unit in Nengo — a recurrent layer that optimally represents a sliding window of a continuous-time signal using Legendre polynomials. Demonstrated learning a fixed-time-delay function via PES on a downstream spiking ensemble.
lorenz
modelA spiking neural implementation of the Lorenz "butterfly" chaotic attractor. A single 3D ensemble with recurrent connections implements the differential equations of the canonical Lorenz system, producing the characteristic two-lobe trajectory.
mnist-convnet
modelA convolutional spiking network trained on MNIST with NengoDL and deployed on Loihi. Demonstrates training a TensorFlow-defined network inside Nengo, then running the trained spiking network on Loihi neuromorphic hardware.
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