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Interdisciplinary Principles Of Field-Like Coordination In The Case Of Self-Organized Social Systems1

Authors: D. Plikynas; S. Masteika; A. Budrionis;

Interdisciplinary Principles Of Field-Like Coordination In The Case Of Self-Organized Social Systems1

Abstract

{"references": ["Plikynas D.: A virtual field-based conceptual framework for the\nsimulation of complex social systems. Journal of Systems Science and\nComplexity 23, 232-248 (2010)", "Yokoi H., Mizuno T., Takita M., Kakazu Y.: Amoeba searching\nbehavior model using vibrating potential field. In: 34th SICE Annual\nConference (SICE '95), pp. 1297 - 1302. Hokkaido University (1995)", "Hameroff S.: Quantum computation in brain microtubules? The\nPenrose-Hameroff 'Orch OR' model of consciousness. Philosophical\nTransactions: Mathematical, Physical and Engineering Sciences 356\n(1743), 1869-1896 (1998)", "Popp F.A., Chang J.J., Herzog A., Yan Z., Yan Y.: Evidence of nonclassical\n(squeezed) light in biological systems. Physics letters A 293,\n98-102 (2002)", "Rossi C., Foletti A., Magnani A., Lamponi S.: New perspectives in cell\ncommunication: bioelectromagnetic interactions. Seminars in Cancer\nbiology 21(3), 207-214 (2011)", "McFadden J.: The Conscious Electromagnetic Information (CEMI)\nField Theory. Journal of Consciousness Studies, 9(8), 45-60.", "John E. R.: The neurophysics of consciousness. Brain Research\nReviews, 39, 1-28 (2002)", "MacLennan B.J.: Field computation in natural and artificial intelligence.\nInformation Sciences, 119, 73-89 (1999)", "Mamei M., Zambonelli F.: Field\u2212based coordination for pervasive\nmulti-agent systems. Springer-Verlag, Berlin (2006)\n[10] Mulle-Schloer C., Sick B.: Emergence in Organic Computing Systems:\nDiscussion of a Controversial Concept. Autonomic and Trusted\nComputing. In: LNCS, pp. 1-16. Springer 4158 (2006)\n[11] Servat D., Drogoul A.: Combining amorphous computing and reactive.\nIn: AMAS-02, pp. 441-448. ACM, Bologna, Italy (2002)\n[12] Laszlo E.: The Systems View of the World: A Holistic Vision for\nOur Time (Advances in Systems Theory, Complexity, and the Human\nSciences) (2nd ed.). Hampton Press, Inc., Cresskill, NJ, US (1996)\n[13] Osipov G. V., Kurths J., Zhou C.: Synchronization in Oscillatory\nNetworks. Springer Series in Synergetics, Berlin (2007)\n[14] MacLennan B.J.: Field computation in motor control. In: Self-\nOrganization, Computational Maps and Motor Control, pp. 37-73.\nElsevier, Amsterdam (1997)"]}

This interdisciplinary research aims to distinguish universal scale-free and field-like fundamental principles of selforganization observable across many disciplines like computer science, neuroscience, microbiology, social science, etc. Based on these universal principles we provide basic premises and postulates for designing holistic social simulation models. We also introduce pervasive information field (PIF) concept, which serves as a simulation media for contextual information storage, dynamic distribution and organization in social complex networks. PIF concept specifically is targeted for field-like uncoupled and indirect interactions among social agents capable of affecting and perceiving broadcasted contextual information. Proposed approach is expressive enough to represent contextual broadcasted information in a form locally accessible and immediately usable by network agents. This paper gives some prospective vision how system-s resources (tangible and intangible) could be simulated as oscillating processes immersed in the all pervasive information field.

Keywords

field-based coordination, pervasive information field, information-rich social networks, multi-agent systems

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popularity
This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
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