4.5 Article

Calculating the Mutual Information between Two Spike Trains

Journal

NEURAL COMPUTATION
Volume 31, Issue 2, Pages 330-343

Publisher

MIT PRESS
DOI: 10.1162/neco_a_01155

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Funding

  1. James S. McDonnell Foundation (JSMF) [220020239]

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It is difficult to estimate the mutual information between spike trains because established methods require more data than are usually available. Kozachenko-Leonenko estimators promise to solve this problem but include a smoothing parameter that must be set. We propose here that the smoothing parameter can be selected by maximizing the estimated unbiased mutual information. This is tested on fictive data and shown to work very well.

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