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inhibitory activity. Science 274(5293), 1724–1726 (1996)
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9. Puigbò, J.-Y., Arsiwalla, X.D., González-Ballester, M.A., Verschure, P.F.M .J.: Switching operation modes in the neocortex via cholinergic neuromodulation. Mol. Neurobiol. 57(1), 139–149
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A. F. Amil et al.
References
1. Keung, W., Hagen, T.A., Wilson, R.C.: A divisive model of evidence accumulation explains
uneven weighting of evidence over time. Nat. Commun. 11(1), 1–9 (2020)
2. Wang, X.-J.: Probabilistic decision making by slow reverberation in cortical circuits. Neuron
36(5), 955–968 (2002)
3. Teeter, C., et al.: Generalized leaky integrate-and-fire models classify multiple neuron types.
Nat. Commun. 9(1), 1–15 (2018)
4. Kawaguchi, Y.: Selective cholinergic modulation of cortical GABAergic cell subtypes. J.
Neurophysiol. 78(3), 1743–1747 (1997)
5. Rosenstein, M.T., Collins, J.J., De Luca, C.J.: A practical method for calculating largest
Lyapunov exponents from small data sets. Physica D 65(1–2), 117–134 (1993)
6. Skarda, C.A., Freeman, W.J.: How brains make chaos in order to make sense of the world.
Behav. Brain Sci. 10(2), 161–195 (1987)
7. van Vreeswijk, C., Sompolinsky, H.: Chaos in neuronal networks with balanced excitatory and
inhibitory activity. Science 274(5293), 1724–1726 (1996)
8. Verschure, P.F.M.J.: Chaos-based learning. Complex Syst. 5, 359–370 (1991)
9. Puigbò, J.-Y., Arsiwalla, X.D., González-Ballester, M.A., Verschure, P.F.M .J.: Switching operation modes in the neocortex via cholinergic neuromodulation. Mol. Neurobiol. 57(1), 139–149
(2019). https://doi.org/10.1007/s12035-019-01764-w
