Abstract
Cooperative effects in neural networks appear because a neuron fires only if a minimal number of its inputs are excited. The multiple inputs requirement leads to a percolation model termed {\it quorum percolation}. The connectivity undergoes a phase transition as grows, from a network--spanning cluster at low to a set of disconnected clusters above a critical . Both numerical simulations and the model reproduce the experimental results well. This allows a robust quantification of biologically relevant quantities such as the average connectivity $\kbar$ and the distribution of connections
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