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      A time-varying complex dynamical network model and its controlled synchronization criteria

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          Emergence of scaling in random networks

          Systems as diverse as genetic networks or the world wide web are best described as networks with complex topology. A common property of many large networks is that the vertex connectivities follow a scale-free power-law distribution. This feature is found to be a consequence of the two generic mechanisms that networks expand continuously by the addition of new vertices, and new vertices attach preferentially to already well connected sites. A model based on these two ingredients reproduces the observed stationary scale-free distributions, indicating that the development of large networks is governed by robust self-organizing phenomena that go beyond the particulars of the individual systems.
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            Statistical mechanics of complex networks

            Complex networks describe a wide range of systems in nature and society, much quoted examples including the cell, a network of chemicals linked by chemical reactions, or the Internet, a network of routers and computers connected by physical links. While traditionally these systems were modeled as random graphs, it is increasingly recognized that the topology and evolution of real networks is governed by robust organizing principles. Here we review the recent advances in the field of complex networks, focusing on the statistical mechanics of network topology and dynamics. After reviewing the empirical data that motivated the recent interest in networks, we discuss the main models and analytical tools, covering random graphs, small-world and scale-free networks, as well as the interplay between topology and the network's robustness against failures and attacks.
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              Synchronization in chaotic systems

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                Author and article information

                Journal
                IEEE Transactions on Automatic Control
                IEEE Trans. Automat. Contr.
                Institute of Electrical and Electronics Engineers (IEEE)
                0018-9286
                June 2005
                June 2005
                : 50
                : 6
                : 841-846
                Article
                10.1109/TAC.2005.849233
                37d94647-e0b6-4024-8685-a8fc7e0b6c73
                © 2005
                History

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