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  1. Generality and applications.Jill H. Larkin - 1987 - Behavioral and Brain Sciences 10 (3):486-487.
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  • Connectionism and implementation.Paul Smolensky - 1987 - Behavioral and Brain Sciences 10 (3):492-493.
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  • Biology of language: Principle predictions and evidence.Friedemann Pulvermüller, Bettina Mohr & Hubert Preissl - 1996 - Behavioral and Brain Sciences 19 (4):643-645.
    Müller's target article aims to summarize approaches to the question of how language elements (phonemes, morphemes, etc.) and rules are laid down in the brain. However, it suffers from being too vague about basic assumptions and empirical predictions of neurobiological models, and the empirical evidence available to test the models is not appropriately evaluated. (1) In a neuroscientific model of language, different cortical localizations of words can only be based on biological principles. These need to be made explicit. (2) Evidence (...)
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  • Hebb's accomplishments misunderstood.Michael Hucka, Mark Weaver & Stephen Kaplan - 1995 - Behavioral and Brain Sciences 18 (4):635-636.
    Amit's efforts to provide stronger theoretical and empirical support for Hebb's cell-assembly concept is admirable, but we have serious reservations about the perspective presented in the target article. For Hebb, the cell assembly was a building block; by contrast, the framework proposed here eschews the need to fit the assembly into a broader picture of its function.
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  • Turing's Analysis of Computation and Theories of Cognitive Architecture.A. J. Wells - 1998 - Cognitive Science 22 (3):269-294.
    Turing's analysis of computation is a fundamental part of the background of cognitive science. In this paper it is argued that a re‐interpretation of Turing's work is required to underpin theorizing about cognitive architecture. It is claimed that the symbol systems view of the mind, which is the conventional way of understanding how Turing's work impacts on cognitive science, is deeply flawed. There is an alternative interpretation that is more faithful to Turing's original insights, avoids the criticisms made of the (...)
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  • The Case for Rules in Reasoning.Edward E. Smith, Christopher Langston & Richard E. Nisbett - 1992 - Cognitive Science 16 (1):1-40.
    A number of theoretical positions in psychology—including variants of case‐based reasoning, instance‐based analogy, and connectionist models—maintain that abstract rules are not involved in human reasoning, or at best play a minor role. Other views hold that the use of abstract rules is a core aspect of human reasoning. We propose eight criteria for determining whether or not people use abstract rules in reasoning, and examine evidence relevant to each criterion for several rule systems. We argue that there is substantial evidence (...)
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  • The Place of Modeling in Cognitive Science.James L. McClelland - 2009 - Topics in Cognitive Science 1 (1):11-38.
    I consider the role of cognitive modeling in cognitive science. Modeling, and the computers that enable it, are central to the field, but the role of modeling is often misunderstood. Models are not intended to capture fully the processes they attempt to elucidate. Rather, they are explorations of ideas about the nature of cognitive processes. In these explorations, simplification is essential—through simplification, the implications of the central ideas become more transparent. This is not to say that simplification has no downsides; (...)
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  • Simulating convesations: The communion game. [REVIEW]Stephen J. Cowley & Karl MacDorman - 1995 - AI and Society 9 (2-3):116-137.
    In their enthusiasm for programming, computational linguists have tended to lose sight of what humansdo. They have conceived of conversations as independent of sound and the bodies that produce it. Thus, implicit in their simulations is the assumption that the text is the essence of talk. In fact, unlike electronic mail, conversations are acoustic events. During everyday talk, human understanding depends both on the words spoken and on fine interpersonal vocal coordination. When utterances are analysed into sequences of word-based forms, (...)
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  • Mental Representation, Conceptual Spaces and Metaphors.Peter Gärdenfors - 1996 - Synthese 106 (1):21 - 47.
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  • (1 other version)Networks with Attitudes.Paul Skokowski - 2007 - Artificial Intelligence and Society 22 (3):461-470.
    Does connectionism spell doom for folk psychology? I examine the proposal that cognitive representational states such as beliefs can play no role if connectionist models - - interpreted as radical new cognitive theories -- take hold and replace other cognitive theories. Though I accept that connectionist theories are radical theories that shed light on cognition, I reject the conclusion that neural networks do not represent. Indeed, I argue that neural networks may actually give us a better working notion of cognitive (...)
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  • Extending Dynamical Systems Theory to Model Embodied Cognition.Scott Hotton & Jeff Yoshimi - 2011 - Cognitive Science 35 (3):444-479.
    We define a mathematical formalism based on the concept of an ‘‘open dynamical system” and show how it can be used to model embodied cognition. This formalism extends classical dynamical systems theory by distinguishing a ‘‘total system’’ (which models an agent in an environment) and an ‘‘agent system’’ (which models an agent by itself), and it includes tools for analyzing the collections of overlapping paths that occur in an embedded agent's state space. To illustrate the way this formalism can be (...)
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  • (1 other version)Connectionism and the philosophy of mind: An overview.William Bechtel - 1988 - Southern Journal of Philosophy 26 (S1):17-41.
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  • Subjekt und selbstmodell. Die perspektivität phänomenalen bewußtseins vor dem hintergrund einer naturalistischen theorie mentaler repräsentation.Thomas K. Metzinger - 1999 - In 自我隧道 自我的新哲学 从神经科学到意识伦理学.
    This book contains a representationalist theory of self-consciousness and of the phenomenal first-person perspective. It draws on empirical data from the cognitive and neurosciences.
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  • Why this makes me think of that.Thierry Ripoll - 1998 - Thinking and Reasoning 4 (1):15 – 43.
    This study was aimed at explaining how and under what conditions surface similarity leads to the retrieval of an analogous base problem in LTM. Some elements of a theory of the organisation of knowledge in memory are proposed. Two levels of representation are distinguished. The first level represents directly accessible, local surface properties. The second level represents more abstract information pertaining to the category with which each analogous problem can be associated. Some results will be described showing that access to (...)
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  • Simulating organizational decision-making using a cognitively realistic agent model.Ron Sun - manuscript
    Most of the work in agent-based social simulation has assumed highly simplified agent models, with little attention being paid to the details of individual cognition. Here, in an effort to counteract that trend, we substitute a realistic cognitive agent model (CLARION) for the simpler models previously used in an organizational design task. On that basis, an exploration is made of the interaction between the cognitive parameters that govern individual agents, the placement of agents in different organizational structures, and the performance (...)
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  • One naturalized epistemological argument against coherentist accounts of empirical knowledge.David K. Henderson - 1995 - Erkenntnis 43 (2):199 - 227.
    The argument I present here is an example of the manner in which naturalizing epistemology can help address fairly traditional epistemological issues. I develop one argument against coherentist epistemologies of empirical knowledge. In doing so, I draw on BonJour (1985), for that account seems to me to indicate the direction in which any plausible coherentist account would need to be developed, at least insofar as such accounts are to conceive of justification in terms of an agent (minimally) possessing articul able (...)
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  • Mad dog nativism.Fiona Cowie - 1998 - British Journal for the Philosophy of Science 49 (2):227-252.
    In his recent book, Concepts: Where Cognitive Science Went Wrong, Jerry Fodor retracts the radical concept-nativism he once defended. Yet that postion stood, virtually unchallenged, for more than twenty years. This neglect is puzzling, as Fodor's arguments against concepts being learnable from experience remain unanswered, and nativism has historically been taken very seriously as a response to empiricism's perceived shortcomings. In this paper, I urge that Fodorean nativism should indeed be rejected. I argue, however, that its deficiencies are not so (...)
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  • Mentalese not spoken here: Computation, cognition and causation.Jay L. Garfield - 1997 - Philosophical Psychology 10 (4):413-35.
    Classical computational modellers of mind urge that the mind is something like a von Neumann computer operating over a system of symbols constituting a language of thought. Such an architecture, they argue, presents us with the best explanation of the compositionality, systematicity and productivity of thought. The language of thought hypothesis is supported by additional independent arguments made popular by Jerry Fodor. Paul Smolensky has developed a connectionist architecture he claims adequately explains compositionality, systematicity and productivity without positing any language (...)
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  • Metaphor, Modularity, and the Evolution of Conceptual Integration.Dan L. Chiappe - 2000 - Metaphor and Symbol 15 (3):137-158.
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  • Connexionnisme et cognition: À la recherche des bonnes questions.Daniel Andler - 1990 - Revue de Synthèse 111 (1-2):95-127.
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  • Equilibrium-point hypothesis, minimum effort control strategy and the triphasic muscle activation pattern.Ning Lan & Patrick E. Crago - 1992 - Behavioral and Brain Sciences 15 (4):769-771.
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  • Cognitive Science.Rick Grush - 2002 - In Peter K. Machamer & Michael Silberstein (eds.), The Blackwell guide to the philosophy of science. Malden, Mass.: Blackwell. pp. 272–289.
    This chapter contains sections titled: Introduction Historical Background: Behaviorism and the Cognitive Revolution Current Topics Future Directions.
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  • Unifying congnition: Has it all been put together?John A. Michon - 1992 - Behavioral and Brain Sciences 15 (3):450-451.
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  • Relatively local neurons in a distributed representation: A neurophysiological perspective.Shabtai Barash - 1990 - Behavioral and Brain Sciences 13 (3):489-491.
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  • Active symbols, limited storage and the power of natural intelligence.Eric Chown & Stephen Kaplan - 1992 - Behavioral and Brain Sciences 15 (3):442-443.
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  • Causal stories.David Magnus - 1990 - Behavioral and Brain Sciences 13 (4):744-744.
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  • Natural selection and the autonomy of syntax.Frederick J. Newmeyer - 1990 - Behavioral and Brain Sciences 13 (4):745-746.
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  • An ideological battle over modals and quantifiers.Massimo Piattelli-Palmarini - 1990 - Behavioral and Brain Sciences 13 (4):752-754.
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  • The evolution of the language faculty: A paradox and its solution.Dan Sperber - 1990 - Behavioral and Brain Sciences 13 (4):756-758.
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  • Linguistic function and linguistic evolution.George A. Broadwell - 1990 - Behavioral and Brain Sciences 13 (4):728-729.
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  • A self-organizing perceptual system.James R. Levenick - 1989 - Behavioral and Brain Sciences 12 (3):409-410.
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  • Damn the (behavioral) data, full steam ahead.William Prinzmetal & Richard Ivry - 1989 - Behavioral and Brain Sciences 12 (3):413-414.
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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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  • The functional meaning of reverberations for sensoric and contextual encoding.Wolfgang Klimesch - 1995 - Behavioral and Brain Sciences 18 (4):636-636.
    Amit argues that the local neuronal spike rate that persists (reverberating) in the absence of the eliciting stimulus represents the code of the eliciting stimulus. Based on the general argument that the inferred functional meaning of reverberation depends in part on the type of representational assumptions, reverberations may only be important for the encoding of contextual information.
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  • Systematicity in the Vision to Language Chain.Niels Ole Bernsen - 1993 - Royal Institute of Philosophy Supplement 34:189-215.
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  • Troubles with the causal homeostasis theory of reference.Charles Nussbaum - 2001 - Philosophical Psychology 14 (2):155 – 178.
    While purely causal theories of reference have provided a plausible account of the meanings of names and natural kind terms, they cannot handle vacuous theoretical terms. The causal homeostasis theory can but incurs other difficulties. Theories of reference that are intensional and not purely causal tend to be molecularist or holist. Holist theories threaten transtheoretic reference, whereas molecularist theories must supply a principled basis for selecting privileged meaning-determining relations between terms. The causal homeostasis theory is a two-factor molecularist theory, but (...)
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  • Neurosymbolic Systems of Perception and Cognition: The Role of Attention.Hugo Latapie, Ozkan Kilic, Kristinn R. Thórisson, Pei Wang & Patrick Hammer - 2022 - Frontiers in Psychology 13.
    A cognitive architecture aimed at cumulative learning must provide the necessary information and control structures to allow agents to learn incrementally and autonomously from their experience. This involves managing an agent's goals as well as continuously relating sensory information to these in its perception-cognition information processing stack. The more varied the environment of a learning agent is, the more general and flexible must be these mechanisms to handle a wider variety of relevant patterns, tasks, and goal structures. While many researchers (...)
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  • Indexical AI.Leif Weatherby & Brian Justie - 2022 - Critical Inquiry 48 (2):381-415.
    This article argues that the algorithms known as neural nets underlie a new form of artificial intelligence that we call indexical AI. Contrasting with the once dominant symbolic AI, large-scale learning systems have become a semiotic infrastructure underlying global capitalism. Their achievements are based on a digital version of the sign-function index, which points rather than describes. As these algorithms spread to parse the increasingly heavy data volumes on platforms, it becomes harder to remain skeptical of their results. We call (...)
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  • Logic and artificial intelligence.Nils J. Nilsson - 1991 - Artificial Intelligence 47 (1-3):31-56.
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  • Robust reasoning: integrating rule-based and similarity-based reasoning.Ron Sun - 1995 - Artificial Intelligence 75 (2):241-295.
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  • Against neuroclassicism: On the perils of armchair neuroscience.Alex Morgan - 2022 - Mind and Language 37 (3):329-355.
    Neuroclassicism is the view that cognition is explained by “classical” computing mechanisms in the nervous system that exhibit a clear demarcation between processing machinery and read–write memory. The psychologist C. R. Gallistel has mounted a sophisticated defense of neuroclassicism by drawing from ethology and computability theory to argue that animal brains necessarily contain read–write memory mechanisms. This argument threatens to undermine the “connectionist” orthodoxy in contemporary neuroscience, which does not seem to recognize any such mechanisms. In this paper I argue (...)
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  • Knowledge Representation: Two Kinds Of Emergence.Veikko Rantala - 2001 - Synthese 129 (2):195-209.
    Two different but closely related issues in current cognitive science will be considered in this essay. One is the controversial and extensively discussed question of how connectionist and symbolic representations of knowledge are related to each other. The other concerns the notion of connectionist learning and its relevance for the understanding of the distinction between propositional and nonpropositional knowledge. More specifically, I shall give an overview of a result in Rantala and Vadén (1994) establishing a limiting case correspondence between symbolic (...)
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  • (1 other version)Do Connectionist Representations Earn Their Explanatory Keep?William Ramsey - 1997 - Mind and Language 12 (1):34-66.
    In this paper I assess the explanatory role of internal representations in connectionist models of cognition. Focusing on both the internal‘hidden’units and the connection weights between units, I argue that the standard reasons for viewing these components as representations are inadequate to bestow an explanatorily useful notion of representation. Hence, nothing would be lost from connectionist accounts of cognitive processes if we were to stop viewing the weights and hidden units as internal representations.
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  • Genetic algorithms: An overview.Melanie Mitchell - 1995 - Complexity 1 (1):31-39.
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  • (1 other version)The relation between linguistic structure and associative theories of language learning—A constructive critique of some connectionist learning models.Joel Lachter & Thomas G. Bever - 1988 - Cognition 28 (1-2):195-247.
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  • Similarity and the development of rules.Dedre Gentner & José Medina - 1998 - Cognition 65 (2-3):263-297.
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  • A non-empiricist perspective on learning in layered networks.Michael I. Jordan - 1990 - Behavioral and Brain Sciences 13 (3):497-498.
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  • Toward a unification of conditioning and cognition in animal learning.William S. Maki - 1990 - Behavioral and Brain Sciences 13 (3):501-502.
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  • Learning from learned networks.M. Pavel - 1990 - Behavioral and Brain Sciences 13 (3):503-504.
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  • On putting the cart before the horse: Taking perception seriously in unified theories of cognition.Kim J. Vicente & Alex Kirlik - 1992 - Behavioral and Brain Sciences 15 (3):461-462.
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