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  1. Emergence and its place in nature: a case study of biochemical networks.Fred C. Boogerd, Frank J. Bruggeman, Robert C. Richardson, Achim Stephan & Hans V. Westerhoff - 2005 - Synthese 145 (1):131-164.
    We will show that there is a strong form of emergence in cell biology. Beginning with C.D. Broad’s classic discussion of emergence, we distinguish two conditions sufficient for emergence. Emergence in biology must be compatible with the thought that all explanations of systemic properties are mechanistic explanations and with their sufficiency. Explanations of systemic properties are always in terms of the properties of the parts within the system. Nonetheless, systemic properties can still be emergent. If the properties of the components (...)
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  • Emergence and Its Place in Nature: A Case Study of Biochemical Networks.F. C. Boogerd, F. J. Bruggeman, Robert C. Richardson, Achim Stephan & H. Westerhoff - 2005 - Synthese 145 (1):131 - 164.
    We will show that there is a strong form of emergence in cell biology. Beginning with C.D. Broad's classic discussion of emergence, we distinguish two conditions sufficient for emergence. Emergence in biology must be compatible with the thought that all explanations of systemic properties are mechanistic explanations and with their sufficiency. Explanations of systemic properties are always in terms of the properties of the parts within the system. Nonetheless, systemic properties can still be emergent. If the properties of the components (...)
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  • GE Hinton, and T. J. Sejnowski," A learning machine for Boltzman Machines,".D. H. Ackley - 1985 - Cognitive Science 9 (1):147-169.
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  • A learning algorithm for boltzmann machines.David H. Ackley, Geoffrey E. Hinton & Terrence J. Sejnowski - 1985 - Cognitive Science 9 (1):147-169.
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  • Self-organization of cognitive performance.Guy C. Van Orden, John G. Holden & Michael T. Turvey - 2003 - Journal of Experimental Psychology: General 132 (3):331.
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  • Developing a domain-general framework for cognition: What is the best approach?James L. McClelland, David C. Plaut, Stephen J. Gotts & Tiago V. Maia - 2003 - Behavioral and Brain Sciences 26 (5):611-614.
    We share with Anderson & Lebiere (A&L) (and with Newell before them) the goal of developing a domain-general framework for modeling cognition, and we take seriously the issue of evaluation criteria. We advocate a more focused approach than the one reflected in Newell's criteria, based on analysis of failures as well as successes of models brought into close contact with experimental data. A&L attribute the shortcomings of our parallel-distributed processing framework to a failure to acknowledge a symbolic level of thought. (...)
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  • The time course of spoken word learning and recognition: studies with artificial lexicons.James S. Magnuson, Michael K. Tanenhaus, Richard N. Aslin & Delphine Dahan - 2003 - Journal of Experimental Psychology: General 132 (2):202.
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  • The Pervasiveness of 1/f Scaling in Speech Reflects the Metastable Basis of Cognition.Christopher T. Kello, Gregory G. Anderson, John G. Holden & Guy C. Van Orden - 2008 - Cognitive Science 32 (7):1217-1231.
    Human neural and behavioral activities have been reported to exhibit fractal dynamics known as 1/f noise, which is more aptly named 1/f scaling. Some argue that 1/f scaling is a general and pervasive property of the dynamical substrate from which cognitive functions are formed. Others argue that it is an idiosyncratic property of domain‐specific processes. An experiment was conducted to investigate whether 1/f scaling pervades the intrinsic fluctuations of a spoken word. Ten participants each repeated the word bucket over 1,000 (...)
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  • Dispersion of response times reveals cognitive dynamics.John G. Holden, Guy C. Van Orden & Michael T. Turvey - 2009 - Psychological Review 116 (2):318-342.
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  • Cognitive emissions of 1/f noise.David L. Gilden - 2001 - Psychological Review 108 (1):33-56.
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  • Discrete thoughts: Why cognition must use discrete representations.Eric Dietrich & Arthur B. Markman - 2003 - Mind and Language 18 (1):95-119.
    Advocates of dynamic systems have suggested that higher mental processes are based on continuous representations. In order to evaluate this claim, we first define the concept of representation, and rigorously distinguish between discrete representations and continuous representations. We also explore two important bases of representational content. Then, we present seven arguments that discrete representations are necessary for any system that must discriminate between two or more states. It follows that higher mental processes require discrete representations. We also argue that discrete (...)
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  • The perception of features and objects.Anne Treisman - 1993 - In A. Baddeley & L. Weiskrantz (eds.), Attention: Selection, Awareness and Control. Clarendon Press. pp. 5-35.
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  • A feature integration theory of attention.Anne Treisman - 1980 - Cognitive Psychology 12:97-136.
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