Braitenberg V, Schuz A. (1991). Anatomy of the Cortex: Statistics and Geometry.

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References and models cited by this paper
References and models that cite this paper

Aviel Y, Horn D, Abeles M. (2005). Memory capacity of balanced networks. Neural computation. 17 [PubMed]

Banerjee A. (2001). On the phase-space dynamics of systems of spiking neurons. I: model and experiments. Neural computation. 13 [PubMed]

Banerjee A. (2001). On the phase-space dynamics of systems of spiking neurons. II: formal analysis. Neural computation. 13 [PubMed]

Banerjee A. (2006). On the sensitive dependence on initial conditions of the dynamics of networks of spiking neurons. Journal of computational neuroscience. 20 [PubMed]

Barbour B, Häusser M. (1997). Intersynaptic diffusion of neurotransmitter. Trends in neurosciences. 20 [PubMed]

Brunel N, Hakim V. (1999). Fast global oscillations in networks of integrate-and-fire neurons with low firing rates. Neural computation. 11 [PubMed]

Brunel N, Wang XJ. (2001). Effects of neuromodulation in a cortical network model of object working memory dominated by recurrent inhibition. Journal of computational neuroscience. 11 [PubMed]

Bush PC, Sejnowski TJ. (1994). Effects of inhibition and dendritic saturation in simulated neocortical pyramidal cells. Journal of neurophysiology. 71 [PubMed]

Diesmann M, Gewaltig MO, Aertsen A. (1999). Stable propagation of synchronous spiking in cortical neural networks. Nature. 402 [PubMed]

Erdi P, Aradi I, Gröbler T. (1997). Rhythmogenesis in single cells and population models: olfactory bulb and hippocampus. Bio Systems. 40 [PubMed]

Goldberg JA, Rokni U, Sompolinsky H. (2004). Patterns of ongoing activity and the functional architecture of the primary visual cortex. Neuron. 42 [PubMed]

Hosaka R, Araki O, Ikeguchi T. (2008). STDP provides the substrate for igniting synfire chains by spatiotemporal input patterns. Neural computation. 20 [PubMed]

Ibañez S, Luebke JI, Chang W, Draguljić D, Weaver CM. (2019). Network Models Predict That Pyramidal Neuron Hyperexcitability and Synapse Loss in the dlPFC Lead to Age-Related Spatial Working Memory Impairment in Rhesus Monkeys. Frontiers in computational neuroscience. 13 [PubMed]

Izhikevich EM. (2006). Polychronization: computation with spikes. Neural computation. 18 [PubMed]

Jolivet R, Gerstner W. (2004). Predicting spike times of a detailed conductance-based neuron model driven by stochastic spike arrival. Journal of physiology, Paris. 98 [PubMed]

Jolivet R, Rauch A, Lüscher HR, Gerstner W. (2006). Predicting spike timing of neocortical pyramidal neurons by simple threshold models. Journal of computational neuroscience. 21 [PubMed]

Latham PE, Nirenberg S. (2004). Computing and stability in cortical networks. Neural computation. 16 [PubMed]

London M, Roth A, Beeren L, Häusser M, Latham PE. (2010). Sensitivity to perturbations in vivo implies high noise and suggests rate coding in cortex. Nature. 466 [PubMed]

Mari CF. (2004). Extremely dilute modular neuronal networks: neocortical memory retrieval dynamics. Journal of computational neuroscience. 17 [PubMed]

Renart A, Song P, Wang XJ. (2003). Robust spatial working memory through homeostatic synaptic scaling in heterogeneous cortical networks. Neuron. 38 [PubMed]

Schneider CJ, Cuntz H, Soltesz I. (2014). Linking macroscopic with microscopic neuroanatomy using synthetic neuronal populations. PLoS computational biology. 10 [PubMed]

Segev I, Rall W. (1998). Excitable dendrites and spines: earlier theoretical insights elucidate recent direct observations. Trends in neurosciences. 21 [PubMed]

Senn W, Fusi S. (2005). Learning only when necessary: better memories of correlated patterns in networks with bounded synapses. Neural computation. 17 [PubMed]

Treves A. (2003). Computational constraints that may have favoured the lamination of sensory cortex. Journal of computational neuroscience. 14 [PubMed]

Wickens JR, Arbuthnott GW, Shindou T. (2007). Simulation of GABA function in the basal ganglia: computational models of GABAergic mechanisms in basal ganglia function. Progress in brain research. 160 [PubMed]

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