Results for 'Complex Systems. '

979 found
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  1. The Complex Systems Approach: Rhetoric or Revolution.Chris Eliasmith - 2012 - Topics in Cognitive Science 4 (1):72-77.
    The complex systems approach (CSA) to characterizing cognitive function is purported to underlie a conceptual and methodological revolution by its proponents. I examine one central claim from each of the contributed papers and argue that the provided examples do not justify calls for radical change in how we do cognitive science. Instead, I note how currently available approaches in ‘‘standard’’ cognitive science are adequate (or even more appropriate) for understanding the CSA provided examples.
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  2. Complex systems and renormalization group explanations.Margaret Morrison - 2014 - Philosophy of Science 81 (5):1144-1156.
    Despite the close connection between the central limit theorem and renormalization group (RG) methods, the latter should be considered fundamentally distinct from the kind of probabilistic framework associated with statistical mechanics, especially the notion of averaging. The mathematics of RG is grounded in dynamical systems theory rather than probability, which raises important issues with respect to the way RG generates explanations of physical phenomena. I explore these differences and show why RG methods should be considered not just calculational tools but (...)
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  3.  28
    Complex systems in Renaissance and Postmodern texts: Aesthetic and epistemological consequences.Yona Dureau - 2008 - Semiotica 2008 (171):311-341.
    "The question of complex systems is relatively new for critics today. Analyzing complex systems in Renaissance texts shows that the Christian kabbalistical concept of harmonia mundi led to an aesthetical development, reflecting the worldview of harmonious parallel worlds. Failure to perceive the esoteric text uniting apparently contradicting themes has often led Renaissance scholars to elaborate a theory of the instability of atmospheres characterizing the English Baroque. This article gives an example of a complex system in Shakespeare's Antony (...)
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  4. Complex systems from the perspective of category theory: II. Covering systems and sheaves.Elias Zafiris - 2005 - Axiomathes 15 (2):181-190.
    Using the concept of adjunction, for the comprehension of the structure of a complex system, developed in Part I, we introduce the notion of covering systems consisting of partially or locally defined adequately understood objects. This notion incorporates the necessary and sufficient conditions for a sheaf theoretical representation of the informational content included in the structure of a complex system in terms of localization systems. Furthermore, it accommodates a formulation of an invariance property of information communication concerning the (...)
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  5. A complex systems theory of teleology.Wayne Christensen - 1996 - Biology and Philosophy 11 (3):301-320.
    Part I [sections 2–4] draws out the conceptual links between modern conceptions of teleology and their Aristotelian predecessor, briefly outlines the mode of functional analysis employed to explicate teleology, and develops the notion of cybernetic organisation in order to distinguish teleonomic and teleomatic systems. Part II is concerned with arriving at a coherent notion of intentional control. Section 5 argues that intentionality is to be understood in terms of the representational properties of cybernetic systems. Following from this, section 6 argues (...)
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  6.  58
    Complex Systems in Aesthetics and Arts.Juan Romero, Colin Johnson & Jon McCormack - 2019 - Complexity 2019:1-2.
    The arts are one of the most complex of human endeavours, and so it is fitting that a special issue on Complex Systems in Aesthetics and Arts is being published. As the editors of this special issue, we would like to thank the reviewers of the submitted papers for their hard work in making this issue possible, as well as the authors who submitted their work and were very responsive to the comments of the reviewers and editors.
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  7.  53
    Complex systems studies.G. Rzevski & C. A. Brebbia (eds.) - 2018 - Boston: WIT Press.
    Containing selected papers on the fundamentals and applications of Complexity Science, this multi-disciplinary book presents new approaches for resolving complex issues that cannot be resolved using conventional mathematical or software models. Complex Systems problems can occur in a variety of areas such as physical sciences and engineering, the economy, the environment, humanities and social and political sciences. Complexity Science problems, the science of open systems consisting of large numbers of diverse components engaged in rich interaction, can occur in (...)
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  8. What is a complex system?James Ladyman, James Lambert & Karoline Wiesner - 2013 - European Journal for Philosophy of Science 3 (1):33-67.
    Complex systems research is becoming ever more important in both the natural and social sciences. It is commonly implied that there is such a thing as a complex system, different examples of which are studied across many disciplines. However, there is no concise definition of a complex system, let alone a definition on which all scientists agree. We review various attempts to characterize a complex system, and consider a core set of features that are widely associated (...)
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  9.  70
    Must Complex Systems Theory Be Materialistic?Horace Fairlamb - 2012 - Foundations of Science 17 (1):1-3.
    So far, the sciences of complexity have received less attention from philosophers than from scientists. Responding to Salthe’s (Found Sci 15, 4(6):357–367, 2010a ) model of evolution, I focus on its metaphysical implications, asking whether the implications of his canonical developmental trajectory (CDT) must be materialistic as his reading proposes.
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  10. Complex Systems Approach to the Hard Problem of Consciousness.Sahana Rajan - manuscript
    Consciousness has been the bone of contention for philosophers throughout centuries. Indian philosophy largely adopted lived experience as the starting point for its explorations of consciousness. For this reason, from the very beginning, experience was an integral way of grasping consciousness, whose validity as a tool was considered self-evident. Thus, in Indian philosophy, the question was not to move from the brain to mind but to understand experience of an individual and how such an experience is determined through mental structures (...)
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  11. Complexity and Postmodernism: Understanding Complex Systems.Paul Cilliers - 1998 - New York: Routledge.
    In _Complexity and Postmodernism_, Paul Cilliers explores the idea of complexity in the light of contemporary perspectives from philosophy and science. Cilliers offers us a unique approach to understanding complexity and computational theory by integrating postmodern theory into his discussion. _Complexity and Postmodernism_ is an exciting and an original book that should be read by anyone interested in gaining a fresh understanding of complexity, postmodernism and connectionism.
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  12. Complex systems from the perspective of category theory: I. Functioning of the adjunction concept.Elias Zafiris - 2005 - Axiomathes 15 (1):147-158.
    We develop a category theoretical scheme for the comprehension of the information structure associated with a complex system, in terms of families of partial or local information carriers. The scheme is based on the existence of a categorical adjunction, that provides a theoretical platform for the descriptive analysis of the complex system as a process of functorial information communication.
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  13.  67
    Modeling complex systems macroscopically: Case/agent‐based modeling, synergetics, and the continuity equation.Rajeev Rajaram & Brian Castellani - 2013 - Complexity 18 (2):8-17.
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  14.  64
    Complex systems theory and development practice: understanding non-linear realities.Samir Rihani - 2002 - New York: Zed Books.
    Here, for the first time, development studies encounters the set of ideas popularly known as 'Chaos Theory'. Samir Rihani applies to the processes of economic development, ideas from complex adaptive systems like uncertainty, complexity, and unpredictability. Rihani examines various aspects of the development process - including the World Bank, debt, and the struggle against poverty - and demonstrates the limitations of fundamentally linear thinking in an essentially non-linear world.
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  15.  20
    Complex Systems, Imitation, and Mythical Explanations.António Machuco Rosa - 2003 - Contagion: Journal of Violence, Mimesis, and Culture 10 (1):161-181.
    In this article we analyze in a new way the epistemological concept of mythical explanation. It is shown, within the framework of the theory of dynamic and complex systems, that this kind of explanation is grounded on the substitution of distributed causation by lineal and single causes. Considering four examples, we show which mechanism is operating in that substitution. The first one concerns a computational implementation of a racial segregation model. The second one will be the analysis of an (...)
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  16.  33
    A complex system approach to language evolution.Francesca Colaiori & Francesca Tria - 2020 - Evolutionary Linguistic Theory 2 (2):118-126.
    Regularities in natural language systems, despite their cognitive advantages in terms of storage and learnability, often coexist with exceptions, raising the question of whether and why irregularities survive. We offer a complex system perspective on this issue, focusing on the irregular past tense forms in English. Two separate processes affect the overall regularity: new verbs constantly entering the vocabulary in the regular form at low frequency, and transitions in both directions (from irregular to regular and vice-versa) occurring in a (...)
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  17.  13
    Complex Systems.A. H. Louie & Roberto Poli - 2019 - In Roberto Poli (ed.), Handbook of Anticipation: Theoretical and Applied Aspects of the Use of Future in Decision Making. Springer Verlag. pp. 17-35.
    Traditional modes of system representation as dynamical systems, involving fixed sets of states together with imposed dynamical laws, pertain only to a meagre subclass of natural systems. This reductionistic paradigm leaves no room for final causes; constrained thus are the simple systems. Members of their complementary collection, natural systems having mathematical models that are not dynamical systems, are the complex systems. Complex systems, containing hierarchical cycles in their entailment networks, can only be approximated and simulated, locally and temporarily, (...)
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  18.  48
    Comparing expert and novice understanding of a complex system from the perspective of structures, behaviors, and functions.Cindy E. Hmelo-Silver & Merav Green Pfeffer - 2004 - Cognitive Science 28 (1):127-138.
    Complex systems are pervasive in the world around us. Making sense of a complex system should require that a person construct a network of concepts and principles about some domain that represents key (often dynamic) phenomena and their interrelationships. This raises the question of how expert understanding of complex systems differs from novice understanding. In this study we examined individuals' representations of an aquatic system from the perspective of structural (elements of a system), behavioral (mechanisms), and functional (...)
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  19.  12
    Complex System of Vertical Baduanjin Lifting Motion Sensing Recognition under the Background of Big Data.Yan Zhang, M. M. Kamruzzaman & Lu Feng - 2021 - Complexity 2021:1-10.
    Nowadays, the development of big data is getting faster and faster, and the related research on motion sensing recognition and complex systems under the background of big data is gradually being valued. At present, there are relatively few related researches on vertical Baduanjin in the academic circles; research in this direction can make further breakthroughs in motion sensor recognition. In order to carry out related action recognition research on the lifting action of vertical Baduanjin, this paper uses sensor technology (...)
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  20.  68
    Multiscale variety in complex systems.Yaneer Bar-Yam - 2004 - Complexity 9 (4):37-45.
    The standard assumptions that underlie many conceptual and quantitative frameworks do not hold for many complex physical, biological, and social systems. Complex systems science clarifies when and why such assumptions fail and provides alternative frameworks for understanding the properties of complex systems. This review introduces some of the basic principles of complex systems science, including complexity profiles, the tradeoff between efficiency and adaptability, the necessity of matching the complexity of systems to that of their environments, multiscale (...)
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  21. Robert Rosen’s Work and Complex Systems Biology.I. C. Baianu - 2006 - Axiomathes 16 (1-2):25-34.
    Complex Systems Biology approaches are here considered from the viewpoint of Robert Rosen’s (M,R)-systems, Relational Biology and Quantum theory, as well as from the standpoint of computer modeling. Realizability and Entailment of (M,R)-systems are two key aspects that relate the abstract, mathematical world of organizational structure introduced by Rosen to the various physicochemical structures of complex biological systems. Their importance for understanding biological function and life itself, as well as for designing new strategies for treating diseases such as (...)
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  22. Complex systems, trade‐offs, and theoretical population biology: Richard Levin's “strategy of model building in population biology” revisited.Jay Odenbaugh - 2003 - Philosophy of Science 70 (5):1496-1507.
    Ecologist Richard Levins argues population biologists must trade‐off the generality, realism, and precision of their models since biological systems are complex and our limitations are severe. Steven Orzack and Elliott Sober argue that there are cases where these model properties cannot be varied independently of one another. If this is correct, then Levins's thesis that there is a necessary trade‐off between generality, precision, and realism in mathematical models in biology is false. I argue that Orzack and Sober's arguments fail (...)
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  23. Categorical Modeling of Natural Complex Systems. Part I: Functorial Process of Representation.Elias Zafiris - 2008 - Advances in Systems Science and Applications 8 (2):187-200.
    We develop a general covariant categorical modeling theory of natural systems’ behavior based on the fundamental functorial processes of representation and localization-globalization. In the first part of this study we analyze the process of representation. Representation constitutes a categorical modeling relation that signifies the semantic bidirectional process of correspondence between natural systems and formal symbolic systems. The notion of formal systems is substantiated by algebraic rings of observable attributes of natural systems. In this perspective, the distinction between simple and (...) systems is reflected in the appropriate qualification of their corresponding rings of observables. The crucial distinguishing requirement with respect to the coordinatizing rings of observables has to do with the property of global commutativity. The global information structure representing the behavior of a complex system is modeled functorially in terms of its Spectrum functor. Due to the fact that, the fundamental process of representation is bidirectional by construction, it admits a precise categorical formulation in terms of the syntactic language of adjoint functors, constituting thus, a categorical adjunction. The left adjoint functor of this adjunction signifies the process of encoding the information related with phenomena of natural systems in terms of coordinatizing rings of observables, whereas, the right adjoint functor signifies the inverse process of information decoding, which, can be used for making predictions about the behavior of natural systems. (shrink)
     
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  24.  88
    Complex Systems, Modelling and Simulation.Sam Schweber & Matthias Wächter - 2000 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 31 (4):583-609.
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  25. Categorical Modeling of Natural Complex Systems. Part II: Functorial Process of Localization-Globalization.Elias Zafiris - 2008 - Advances in Systems Science and Applications 8 (3):367-387.
    We develop a general covariant categorical modeling theory of natural systems' behavior based on the fundamental functorial processes of representation and localization-globalization. In the second part of this study we analyze the semantic bidirectional process of localization-globalization. The notion of a localization system of a complex information structure bears a dual role: Firstly, it determines the appropriate categorical environment of base reference contexts for considering the operational modeling of a complex system's behavior, and secondly, it specifies the global (...)
     
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  26.  52
    Understanding complex systems: Defining an abstract concept.Alfred W. Hübler - 2007 - Complexity 12 (5):9-11.
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  27.  24
    Teaching for complex systems thinking.Rosemary Hipkins - 2021 - Wellington, New Zealand: NZCER Press.
    What do a short car trip, a pandemic, the wood-wide fungal web, a challenging learning experience, a storm, transport logistics, and the language(s) we speak have in common? All of them are systems, or multiple sets of systems within systems. What happens in any set of circumstances will depend on a mix of initial conditions, complexity dynamics, and the odd wild card (e.g., a chance event). While it is possible to model and predict what might or perhaps should happen, it (...)
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  28. Are complex systems hard to evolve?Andy Adamatzky & Larry Bull - 2009 - Complexity 14 (6):15-20.
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  29.  25
    Complex systems engineering: Putting complex systems to work.Russ Abbott - 2007 - Complexity 13 (2):10-11.
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  30.  38
    Putting complex systems to work.Russ Abbott - 2007 - Complexity 13 (2):30-49.
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  31. The compatibility of complex systems and reduction: A case analysis of memory research. [REVIEW]William Bechtel - 2001 - Minds and Machines 11 (4):483-502.
    Some theorists who emphasize the complexity of biological and cognitive systems and who advocate the employment of the tools of dynamical systems theory in explaining them construe complexity and reduction as exclusive alternatives. This paper argues that reduction, an approach to explanation that decomposes complex activities and localizes the components within the complex system, is not only compatible with an emphasis on complexity, but provides the foundation for dynamical analysis. Explanation via decomposition and localization is nonetheless extremely challenging, (...)
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  32. Network representation and complex systems.Charles Rathkopf - 2018 - Synthese (1).
    In this article, network science is discussed from a methodological perspective, and two central theses are defended. The first is that network science exploits the very properties that make a system complex. Rather than using idealization techniques to strip those properties away, as is standard practice in other areas of science, network science brings them to the fore, and uses them to furnish new forms of explanation. The second thesis is that network representations are particularly helpful in explaining the (...)
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  33. Predicting complex systems with a holistic approach: The “throughput” criterion.Alfred W. Hübler - 2005 - Complexity 10 (3):11-16.
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  34. (1 other version)Introduction to philosophy of complex systems: A: part A: towards a framework for complex systems.Cliff Hooker - unknown
    Every essay in this book is original, often highly original, and they will be of interest to practising scientists as much as they will be to philosophers of science — not least because many of the essays are by leading scientists who are currently creating the emerging new complex systems paradigm. This is no accident. The impact of complex systems on science is a recent, ongoing and profound revolution. But with a few honourable exceptions, it has largely been (...)
     
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  35.  25
    Ideological Complex Systems: Mathematical Theory.Josué Antonio Nescolarde-Selva, José Luis Usó-Doménech & Miguel Lloret-Climent - 2016 - Complexity 21 (2):47-65.
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  36.  40
    Why complex systems engineering needs biological development.W. Banzhaf & N. Pillay - 2007 - Complexity 13 (2):12-21.
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  37. A semiotic approach to complex systems.Harald Atmanspacher - manuscript
    A key topic in the work of Burghard Rieger is the notion of meaning. To explore this notion, he and his collaborators developed a most sophisticated approach combining theoretical ideas and concepts of semiotics with empirical and numerical tools of computational linguistics. In the present contribution, relations of Rieger’s achievements to some issues of interest in the physics and philosophy of complex systems will be addressed.
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  38.  28
    Complex systems and human movement.Gottfried Mayer-Kress, Yeou-Teh Liu & Karl M. Newell - 2006 - Complexity 12 (2):40-51.
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  39. Change and identity in complex systems.John Collier - unknown
    Complex systems are dynamic and may show high levels of variability in both space and time. It is often difficult to decide on what constitutes a given complex system, i.e., where system boundaries should be set, and what amounts to substantial change within the system. We discuss two central themes: the nature of system definitions and their ability to cope with change, and the importance of system definitions for the mental metamodels that we use to describe and order (...)
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  40.  84
    Complex systems, evolution, and animal models.Ray Greek & Niall Shanks - 2011 - Studies in History and Philosophy of Science Part A 42 (4):542-544.
  41.  26
    (1 other version)What is a Complex System, After All?Ernesto Estrada - 2024 - Foundations of Science 29 (4):1143-1170.
    The study of complex systems, although an interdisciplinary endeavor, is considered as an integrating part of physical sciences. Contrary to the historical fact that the field is already mature, it still lacks a clear and unambiguous definition of its main object of study. Here, I propose a definition of complex systems based on the conceptual clarifications made by Edgar Morin about the bidirectional non-separability of parts and whole produced by the nature of interactions. Then, a complex system (...)
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  42.  32
    Understanding complex systems: Networks.Alfred W. Hübler - 2005 - Complexity 10 (3):17-17.
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  43.  8
    Modeling complex systems: Do it!Gérard Weisbuch - 2006 - Complexity 11 (3):25-26.
  44.  10
    Social Emergence: Societies as Complex Systems.R. Keith Sawyer - 2005 - Cambridge University Press.
    Can we understand important social issues by studying individual personalities and decisions? Or are societies somehow more than the people in them? Sociologists have long believed that psychology can't explain what happens when people work together in complex modern societies. In contrast, most psychologists and economists believe that if we have an accurate theory of how individuals make choices and act on them, we can explain pretty much everything about social life. Social Emergence takes a new approach to these (...)
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  45. Causality in complex systems.Andreas Wagner - 1999 - Biology and Philosophy 14 (1):83-101.
    Systems involving many interacting variables are at the heart of the natural and social sciences. Causal language is pervasive in the analysis of such systems, especially when insight into their behavior is translated into policy decisions. This is exemplified by economics, but to an increasing extent also by biology, due to the advent of sophisticated tools to identify the genetic basis of many diseases. It is argued here that a regularity notion of causality can only be meaningfully defined for systems (...)
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  46.  11
    From Complex System to Integrative Science.Naoshi Yamawaki - 2010 - Diogenes 57 (3):117-133.
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  47. Complex systems and effective interaction.James Genone & Ian Van Buskirk - 2017 - In Stephen Michael Kosslyn, Ben Nelson & Robert Kerrey (eds.), Building the intentional university: Minerva and the future of higher education. Cambridge, MA: The MIT Press.
     
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  48. 4 Complex systems methods in cognitive systems and the representation of environmental information.Philip Van Loocke - 1999 - In Philip R. Loockvane (ed.), The nature of concepts: evolution, structure, and representation. New York: Routledge.
  49.  20
    Causality in complex systems: An inferentialist proposal.Lorenzo Casini - unknown
    I argue for an inferentialist account of the meaning of causal claims, which draws on the writings of Sellars and Brandom. The account is meant to be widely applicable. In this work, it is motivated and defended with reference to complex systems sciences, i.e., sciences that study the behaviour of systems with many components interacting at various levels of organisation (e.g. cells, brain, social groups). Here are three, seemingly-uncontroversial platitudes about causality. (1) Causal relations are objective, mind-independent relations and, (...)
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  50.  30
    Foundations of Complex-system Theories In Economics, Evolutionary Biology, and Statistical Physics.Sunny Auyang (ed.) - 1998 - Cambridge University Press.
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