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Learning and Prospective Recall of Noisy Spike Pattern Episodes

Spike patterns in vivo are often incomplete or corrupted with noise that makes inputs to neuronal networks appear to vary although they may, in fact, be samples of a single underlying pattern or repeated presentation. Here we present a recurrent spiking neural network (SNN) model that learns noisy p...

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書誌詳細
主要な著者: Karl eDockendorf, Narayan eSrinivasa
フォーマット: Artigo
言語:Inglês
出版事項: Frontiers Media S.A. 2013-06-01
シリーズ:Frontiers in Computational Neuroscience
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オンライン・アクセス:http://journal.frontiersin.org/Journal/10.3389/fncom.2013.00080/full
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