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      A VLSI array of low-power spiking neurons and bistable synapses with spike-timing dependent plasticity.

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          Abstract

          We present a mixed-mode analog/digital VLSI device comprising an array of leaky integrate-and-fire (I&F) neurons, adaptive synapses with spike-timing dependent plasticity, and an asynchronous event based communication infrastructure that allows the user to (re)configure networks of spiking neurons with arbitrary topologies. The asynchronous communication protocol used by the silicon neurons to transmit spikes (events) off-chip and the silicon synapses to receive spikes from the outside is based on the "address-event representation" (AER). We describe the analog circuits designed to implement the silicon neurons and synapses and present experimental data showing the neuron's response properties and the synapses characteristics, in response to AER input spike trains. Our results indicate that these circuits can be used in massively parallel VLSI networks of I&F neurons to simulate real-time complex spike-based learning algorithms.

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          Author and article information

          Journal
          IEEE Trans Neural Netw
          IEEE transactions on neural networks
          Institute of Electrical and Electronics Engineers (IEEE)
          1045-9227
          1045-9227
          Jan 2006
          : 17
          : 1
          Affiliations
          [1 ] Institute of Neuroinformatics, Swiss Federal Institute of Technology, Zurich CH-8057, Switzerland. giacomo@ini.phys.ethz.ch
          Article
          10.1109/TNN.2005.860850
          16526488
          67dff28d-feb1-4679-98c9-f3bf072fbac2
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