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  1. Autonomous processing in parallel distributed processing networks.Michael R. W. Dawson & Don P. Schopflocher - 1992 - Philosophical Psychology 5 (2):199-219.
    This paper critically examines the claim that parallel distributed processing (PDP) networks are autonomous learning systems. A PDP model of a simple distributed associative memory is considered. It is shown that the 'generic' PDP architecture cannot implement the computations required by this memory system without the aid of external control. In other words, the model is not autonomous. Two specific problems are highlighted: (i) simultaneous learning and recall are not permitted to occur as would be required of an autonomous system; (...)
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  • Further advantages of abandoning the locality assumption in face recognition.Jules Davidoff & Bernard Renault - 1994 - Behavioral and Brain Sciences 17 (1):68-68.
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  • The algorithm/implementation distinction.Austen Clark - 1987 - Behavioral and Brain Sciences 10 (3):480-480.
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  • Modularity, abstractness and the interactive brain.James M. Clark - 1994 - Behavioral and Brain Sciences 17 (1):67-68.
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  • Functional principles and situated problem solving.William J. Clancey - 1987 - Behavioral and Brain Sciences 10 (3):479-480.
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  • Connectionism isn't magic.Hugh Clapin - 1991 - Minds and Machines 1 (2):167-84.
    Ramsey, Stich and Garon's recent paper Connectionism, Eliminativism, and the Future of Folk Psychology claims a certain style of connectionism to be the final nail in the coffin of folk psychology. I argue that their paper fails to show this, and that the style of connectionism they illustrate can in fact supplement, rather than compete with, the claims of a theory of cognition based in folk psychology's ontology. Ramsey, Stich and Garon's argument relies on the lack of easily identifiable symbols (...)
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  • Modularity, interaction and connectionist neuropsychology.Nick Chater - 1994 - Behavioral and Brain Sciences 17 (1):66-67.
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  • Casting one's net too widely?D. P. Carey & A. D. Milner - 1994 - Behavioral and Brain Sciences 17 (1):65-66.
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  • Locality, modularity and numerical cognition.Jamie I. D. Campbell - 1994 - Behavioral and Brain Sciences 17 (1):63-64.
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  • Discarding locality assumptions: Problems and prospects.Ruth Campbell - 1994 - Behavioral and Brain Sciences 17 (1):64-65.
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  • Regional specialities.Brian Butterworth - 1994 - Behavioral and Brain Sciences 17 (1):63-63.
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  • Neural constraints in cognitive science.Keith Butler - 1994 - Minds and Machines 4 (2):129-62.
    The paper is an examination of the ways and extent to which neuroscience places constraints on cognitive science. In Part I, I clarify the issue, as well as the notion of levels in cognitive inquiry. I then present and address, in Part II, two arguments designed to show that facts from neuroscience are at a level too low to constrain cognitive theory in any important sense. I argue, to the contrary, that there are several respects in which facts from neurophysiology (...)
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  • Local representations without the locality assumption.A. Mike Burton & Vicki Bruce - 1994 - Behavioral and Brain Sciences 17 (1):62-63.
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  • Simulating nonlocal systems: Rules of the game.John A. Bullinaria - 1994 - Behavioral and Brain Sciences 17 (1):61-62.
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  • Levels of description and explanation in cognitive science.William Bechtel - 1994 - Minds and Machines 4 (1):1-25.
    The notion of levels has been widely used in discussions of cognitive science, especially in discussions of the relation of connectionism to symbolic modeling of cognition. I argue that many of the notions of levels employed are problematic for this purpose, and develop an alternative notion grounded in the framework of mechanistic explanation. By considering the source of the analogies underlying both symbolic modeling and connectionist modeling, I argue that neither is likely to provide an adequate analysis of processes at (...)
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  • Many levels: More than one is algorithmic.Michael A. Arbib - 1987 - Behavioral and Brain Sciences 10 (3):478-479.
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  • Spanning seven orders of magnitude: a challenge for cognitive modeling.John R. Anderson - 2002 - Cognitive Science 26 (1):85-112.
    Much of cognitive psychology focuses on effects measured in tens of milliseconds while significant educational outcomes take tens of hours to achieve. The task of bridging this gap is analyzed in terms of Newell's (1990) bands of cognition—the Biological, Cognitive, Rational, and Social Bands. The 10 millisecond effects reside in his Biological Band while the significant learning outcomes reside in his Social Band. The paper assesses three theses: The Decomposition Thesis claims that learning occurring at the Social Band can be (...)
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  • Methodologies for studying human knowledge.John R. Anderson - 1987 - Behavioral and Brain Sciences 10 (3):467-477.
    The appropriate methodology for psychological research depends on whether one is studying mental algorithms or their implementation. Mental algorithms are abstract specifications of the steps taken by procedures that run in the mind. Implementational issues concern the speed and reliability of these procedures. The algorithmic level can be explored only by studying across-task variation. This contrasts with psychology's dominant methodology of looking for within-task generalities, which is appropriate only for studying implementational issues.The implementation-algorithm distinction is related to a number of (...)
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  • Implementations, algorithms, and more.John R. Anderson - 1987 - Behavioral and Brain Sciences 10 (3):498-505.
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  • Modularity need not imply locality: Damaged modules can have nonlocal effects.Edgar Zurif & David Swinney - 1994 - Behavioral and Brain Sciences 17 (1):89-90.
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  • What counts as local?Andrew W. Young - 1994 - Behavioral and Brain Sciences 17 (1):88-89.
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  • Do Religious Beliefs Have a Place within an ‘Epistemically Naturalized’ Cognitive System?Graham Wood - 2017 - Sophia 56 (4):539-556.
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  • The localization/distribution distinction in neuropsychology is related to the isomorphism/multiple meaning distinction in cell electrophysiology.Gerald S. Wasserman - 1994 - Behavioral and Brain Sciences 17 (1):87-88.
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  • The symbolic brain or the invisible hand?René van Hezewijk & Edward H. F. de Haan - 1994 - Behavioral and Brain Sciences 17 (1):85-86.
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  • Playing Flourens to Fodor's Gall.Tim van Gelder - 1994 - Behavioral and Brain Sciences 17 (1):84-84.
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  • Prosopagnosia, conscious awareness and the interactive brain.Robert Van Gulick - 1994 - Behavioral and Brain Sciences 17 (1):84-85.
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  • The functional architecture of visual attention may still be modular.Carlo Umiltà - 1994 - Behavioral and Brain Sciences 17 (1):82-83.
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  • Learning is critical, not implementation versus algorithm.James T. Townsend - 1987 - Behavioral and Brain Sciences 10 (3):497-497.
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  • Connectionist models are also algorithmic.David S. Touretzky - 1987 - Behavioral and Brain Sciences 10 (3):496-497.
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  • What is the algorithmic level?M. M. Taylor & R. A. Pigeau - 1987 - Behavioral and Brain Sciences 10 (3):495-496.
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  • From Implausible Artificial Neurons to Idealized Cognitive Models: Rebooting Philosophy of Artificial Intelligence.Catherine Stinson - 2020 - Philosophy of Science 87 (4):590-611.
    There is a vast literature within philosophy of mind that focuses on artificial intelligence, but hardly mentions methodological questions. There is also a growing body of work in philosophy of science about modeling methodology that hardly mentions examples from cognitive science. Here these discussions are connected. Insights developed in the philosophy of science literature about the importance of idealization provide a way of understanding the neural implausibility of connectionist networks. Insights from neurocognitive science illuminate how relevant similarities between models and (...)
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  • Applying Marr to memory.Keith Stenning - 1987 - Behavioral and Brain Sciences 10 (3):494-495.
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  • Interactive instructional systems and models of human problem solving.Edward P. Stabler - 1987 - Behavioral and Brain Sciences 10 (3):493-494.
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  • Connectionism and implementation.Paul Smolensky - 1987 - Behavioral and Brain Sciences 10 (3):492-493.
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  • The real functional architecture is gray, wet and slippery.Steven L. Small - 1994 - Behavioral and Brain Sciences 17 (1):81-82.
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  • Are connectionist models cognitive?Benny Shanon - 1992 - Philosophical Psychology 5 (3):235-255.
    In their critique of connectionist models Fodor and Pylyshyn (1988) dismiss such models as not being cognitive or psychological. Evaluating Fodor and Pylyshyn's critique requires examining what is required in characterizating models as 'cognitive'. The present discussion examines the various senses of this term. It argues the answer to the title question seems to vary with these different senses. Indeed, by one sense of the term, neither representa-tionalism nor connectionism is cognitive. General ramifications of such an appraisal are discussed and (...)
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  • Bayesian computation and mechanism: Theoretical pluralism drives scientific emergence.David K. Sewell, Daniel R. Little & Stephan Lewandowsky - 2011 - Behavioral and Brain Sciences 34 (4):212-213.
    The breadth-first search adopted by Bayesian researchers to map out the conceptual space and identify what the framework can do is beneficial for science and reflective of its collaborative and incremental nature. Theoretical pluralism among researchers facilitates refinement of models within various levels of analysis, which ultimately enables effective cross-talk between different levels of analysis.
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  • Throwing out the neuropsychological data with the locality bathwater?Philip Servos & Elizabeth M. Olds - 1994 - Behavioral and Brain Sciences 17 (1):80-81.
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  • Locus-pocus.Carlo Semenza - 1994 - Behavioral and Brain Sciences 17 (1):80-80.
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  • Perception and its interactive substrate: Psychophysical linking hypotheses and psychophysical methods.Robert Sekuler - 1994 - Behavioral and Brain Sciences 17 (1):79-79.
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  • Levels of research.Colleen Seifert & Donald A. Norman - 1987 - Behavioral and Brain Sciences 10 (3):490-492.
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  • Weak versus strong claims about the algorithmic level.Paul S. Rosenbloom - 1987 - Behavioral and Brain Sciences 10 (3):490-490.
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  • Is there more than one type of mental algorithm?Ronan G. Reilly - 1987 - Behavioral and Brain Sciences 10 (3):489-490.
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  • Ways and means.Adam V. Reed - 1987 - Behavioral and Brain Sciences 10 (3):488-489.
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  • Local and distributed processes in attentional orienting.Michael I. Posner - 1994 - Behavioral and Brain Sciences 17 (1):78-79.
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  • Parallel distributed processing challenges the strong modularity hypothesis, not the locality assumption.David C. Plaut - 1994 - Behavioral and Brain Sciences 17 (1):77-78.
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  • Computational levels again.Mike Oaksford - 1994 - Behavioral and Brain Sciences 17 (1):76-77.
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  • The Past, Present, and Future of Cognitive Architectures.Niels Taatgen & John R. Anderson - 2010 - Topics in Cognitive Science 2 (4):693-704.
    Cognitive architectures are theories of cognition that try to capture the essential representations and mechanisms that underlie cognition. Research in cognitive architectures has gradually moved from a focus on the functional capabilities of architectures to the ability to model the details of human behavior, and, more recently, brain activity. Although there are many different architectures, they share many identical or similar mechanisms, permitting possible future convergence. In judging the quality of a particular cognitive model, it is pertinent to not just (...)
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  • Nonverbal knowledge as algorithms.Chris Mortensen - 1987 - Behavioral and Brain Sciences 10 (3):487-488.
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  • Computational Mechanisms and Models of Computation.Marcin Miłkowski - 2014 - Philosophia Scientiae 18:215-228.
    In most accounts of realization of computational processes by physical mechanisms, it is presupposed that there is one-to-one correspondence between the causally active states of the physical process and the states of the computation. Yet such proposals either stipulate that only one model of computation is implemented, or they do not reflect upon the variety of models that could be implemented physically. In this paper, I claim that mechanistic accounts of computation should allow for a broad variation of models of (...)
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