Theoretical Model for Mesoscopic-Level Scale-Free Self-Organization of Functional Brain Networks
暂无分享,去创建一个
Filip Piekniewski | Jaroslaw Piersa | Tomasz Schreiber | Jaroslaw Piersa | T. Schreiber | F. Piekniewski
[1] A. Barabasi,et al. Evolution of the social network of scientific collaborations , 2001, cond-mat/0104162.
[2] Duncan J. Watts,et al. The Structure and Dynamics of Networks: (Princeton Studies in Complexity) , 2006 .
[3] Dante R Chialvo,et al. Identifying directed links in large scale functional networks: application to brain fMRI , 2007, BMC Cell Biology.
[4] Emile H. L. Aarts,et al. Simulated annealing and Boltzmann machines - a stochastic approach to combinatorial optimization and neural computing , 1990, Wiley-Interscience series in discrete mathematics and optimization.
[5] S. Redner. How popular is your paper? An empirical study of the citation distribution , 1998, cond-mat/9804163.
[6] F. Chung,et al. Complex Graphs and Networks , 2006 .
[7] Walter J. Freeman,et al. Scale-free neocortical dynamics , 2007, Scholarpedia.
[8] O. Sporns,et al. Complex brain networks: graph theoretical analysis of structural and functional systems , 2009, Nature Reviews Neuroscience.
[9] L. da Fontoura Costa,et al. Efficient Hopfield pattern recognition on a scale-free neural network , 2002, cond-mat/0212601.
[10] G. Italiano,et al. Algorit[h]ms - ESA '98 : 6th Annual European Symposium, Venice, Italy, August 24-26, 1998 : proceedings , 1998 .
[11] J. Montoya,et al. Small world patterns in food webs. , 2002, Journal of theoretical biology.
[12] R. Albert,et al. The large-scale organization of metabolic networks , 2000, Nature.
[13] C Koch,et al. Complexity and the nervous system. , 1999, Science.
[14] E. Bullmore,et al. A Resilient, Low-Frequency, Small-World Human Brain Functional Network with Highly Connected Association Cortical Hubs , 2006, The Journal of Neuroscience.
[15] Albert-László Barabási,et al. Statistical mechanics of complex networks , 2001, ArXiv.
[16] D. Chialvo,et al. Ising-like dynamics in large-scale functional brain networks. , 2008, Physical review. E, Statistical, nonlinear, and soft matter physics.
[17] Linyuan Lu,et al. Complex Graphs and Networks (CBMS Regional Conference Series in Mathematics) , 2006 .
[18] Albert-László Barabási,et al. Internet: Diameter of the World-Wide Web , 1999, Nature.
[19] G. Cecchi,et al. Scale-free brain functional networks. , 2003, Physical review letters.
[20] U. Bhalla,et al. Emergent properties of networks of biological signaling pathways. , 1999, Science.
[21] Mark E. J. Newman,et al. Structure and Dynamics of Networks , 2009 .
[22] Filip Piekniewski,et al. Emergence of Scale-free Spike Flow Graphs in Recurrent Neural Networks , 2007, 2007 IEEE Symposium on Foundations of Computational Intelligence.
[23] Edward T. Bullmore,et al. Broadband Criticality of Human Brain Network Synchronization , 2009, PLoS Comput. Biol..
[24] R. F. Galán,et al. On How Network Architecture Determines the Dominant Patterns of Spontaneous Neural Activity , 2008, PLoS ONE.
[25] Alan C. Evans,et al. Mapping anatomical connectivity patterns of human cerebral cortex using in vivo diffusion tensor imaging tractography. , 2009, Cerebral cortex.
[26] H E Stanley,et al. Classes of small-world networks. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[27] Juan I. Perotti,et al. A scale-free neural network for modelling neurogenesis , 2006 .
[28] E. Bullmore,et al. Neurophysiological architecture of functional magnetic resonance images of human brain. , 2005, Cerebral cortex.
[29] Jeffery R. Westbrook,et al. A Functional Approach to External Graph Algorithms , 1998, Algorithmica.
[30] Filip Piekniewski,et al. Spontaneous scale-free structure of spike flow graphs in recurrent neural networks , 2008, Neural Networks.
[31] M. Penrose,et al. CONTINUUM PERCOLATION (Cambridge Tracts in Mathematics 119) By Ronald Meester and Rahul Roy: 238 pp., £35.00, ISBN 0 521 47504 X (Cambridge University Press, 1996) , 1998 .
[32] Cornelis J. Stam,et al. Small-world and scale-free organization of voxel-based resting-state functional connectivity in the human brain , 2008, NeuroImage.
[33] T. Schreiber. Spectra of winner-take-all stochastic neural networks , 2008, 0810.3193.
[34] Roberto Fernández Galán. On how network architecture determines the dominant patterns of spontaneous neural activity. , 2008, PloS one.
[35] S. Hayasaka,et al. Degree distributions in mesoscopic and macroscopic functional brain networks , 2009, 0903.4168.
[36] Fan Chung Graham,et al. A random graph model for massive graphs , 2000, STOC '00.
[37] Filip Pigkniewski,et al. Emergence of Scale-free Graphs in Dynamical Spiking Neural Networks , 2007, 2007 International Joint Conference on Neural Networks.
[38] Eugene M. Izhikevich,et al. Simple model of spiking neurons , 2003, IEEE Trans. Neural Networks.
[39] Jose M. Montoya Ricard V. Sole,et al. Small world patterns in food webs. , 2000, Journal of theoretical biology.
[40] Ramon Ferrer i Cancho,et al. The small world of human language , 2001, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[41] Filip Piekniewski,et al. Robustness of power laws in degree distributions for spiking neural networks , 2009, 2009 International Joint Conference on Neural Networks.
[42] Peter Andras,et al. Simulation of robustness against lesions of cortical networks , 2007, The European journal of neuroscience.
[43] Michael Menzinger,et al. Topology and computational performance of attractor neural networks. , 2003, Physical review. E, Statistical, nonlinear, and soft matter physics.