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  1. Does meaning evolove?Mark D. Roberts - forthcoming - Philosophical Explorations.
    A common method of improving how well understood a theory is, is by comparing it to another theory which has been better developed. Radical interpretation is a theory which attempts to explain how communication has meaning. Radical interpretation is treated as another time dependent theory and compared to the time dependent theory of biological evolution. Several similarities and differences are uncovered. Biological evolution can be gradual or punctuated. Whether radical interpretation is gradual or punctuated depends on how the question is (...)
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  • Synchronization and cognitive carpentry: From systematic structuring to simple reasoning. E. Koerner - 1993 - Behavioral and Brain Sciences 16 (3):465-466.
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  • The language of thought hypothesis.Murat Aydede - 2010 - Stanford Encyclopedia of Philosophy.
    A comprehensive introduction to the Language of Though Hypothesis (LOTH) accessible to general audiences. LOTH is an empirical thesis about thought and thinking. For their explication, it postulates a physically realized system of representations that have a combinatorial syntax (and semantics) such that operations on representations are causally sensitive only to the syntactic properties of representations. According to LOTH, thought is, roughly, the tokening of a representation that has a syntactic (constituent) structure with an appropriate semantics. Thinking thus consists in (...)
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  • Ethereal oscillations.Malcolm P. Young - 1993 - Behavioral and Brain Sciences 16 (3):476-477.
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  • Dynamic-binding theory is not plausible without chaotic oscillation.Ichiro Tsuda - 1993 - Behavioral and Brain Sciences 16 (3):475-476.
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  • Reconstructing Physical Symbol Systems.David S. Touretzky & Dean A. Pomerleau - 1994 - Cognitive Science 18 (2):345-353.
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  • Should first-order logic be neurally plausible?David S. Touretzky & Scott E. Fahlman - 1993 - Behavioral and Brain Sciences 16 (3):474-475.
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  • Temporal synchrony and the speed of visual processing.Simon J. Thorpe - 1993 - Behavioral and Brain Sciences 16 (3):473-474.
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  • Phase logic is biologically relevant logic.Gary W. Strong - 1993 - Behavioral and Brain Sciences 16 (3):472-473.
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  • Do simple associations lead to systematic reasoning?Steven Sloman - 1993 - Behavioral and Brain Sciences 16 (3):471-472.
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  • Symbolic/Subsymbolic Interface Protocol for Cognitive Modeling.Patrick Simen & Thad Polk - 2010 - Logic Journal of the IGPL 18 (5):705-761.
    Researchers studying complex cognition have grown increasingly interested in mapping symbolic cognitive architectures onto subsymbolic brain models. Such a mapping seems essential for understanding cognition under all but the most extreme viewpoints (namely, that cognition consists exclusively of digitally implemented rules; or instead, involves no rules whatsoever). Making this mapping reduces to specifying an interface between symbolic and subsymbolic descriptions of brain activity. To that end, we propose parameterization techniques for building cognitive models as programmable, structured, recurrent neural networks. Feedback (...)
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  • From simple associations to systematic reasoning: A connectionist representation of rules, variables, and dynamic binding using temporal synchrony.Lokendra Shastri & Venkat Ajjanagadde - 1993 - Behavioral and Brain Sciences 16 (3):417-51.
    Human agents draw a variety of inferences effortlessly, spontaneously, and with remarkable efficiency – as though these inferences were a reflexive response of their cognitive apparatus. Furthermore, these inferences are drawn with reference to a large body of background knowledge. This remarkable human ability seems paradoxical given the complexity of reasoning reported by researchers in artificial intelligence. It also poses a challenge for cognitive science and computational neuroscience: How can a system of simple and slow neuronlike elements represent a large (...)
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  • A step toward modeling reflexive reasoning.Lokendra Shastri & Venkat Ajjanagadde - 1993 - Behavioral and Brain Sciences 16 (3):477-494.
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  • Useful ideas for exploiting time to engineer representations.Richard Rohwer - 1993 - Behavioral and Brain Sciences 16 (3):471-471.
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  • Cognition and decision in biomedical artificial intelligence: From symbolic representation to emergence. [REVIEW]Vincent Rialle - 1995 - AI and Society 9 (2-3):138-160.
    This paper presents work in progress on artificial intelligence in medicine (AIM) within the larger context of cognitive science. It introduces and develops the notion ofemergence both as an inevitable evolution of artificial intelligence towards machine learning programs and as the result of a synergistic co-operation between the physician and the computer. From this perspective, the emergence of knowledge takes placein fine in the expert's mind and is enhanced both by computerised strategies of induction and deduction, and by software abilities (...)
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  • The Computational Origin of Representation.Steven T. Piantadosi - 2020 - Minds and Machines 31 (1):1-58.
    Each of our theories of mental representation provides some insight into how the mind works. However, these insights often seem incompatible, as the debates between symbolic, dynamical, emergentist, sub-symbolic, and grounded approaches to cognition attest. Mental representations—whatever they are—must share many features with each of our theories of representation, and yet there are few hypotheses about how a synthesis could be possible. Here, I develop a theory of the underpinnings of symbolic cognition that shows how sub-symbolic dynamics may give rise (...)
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  • Making reasoning more reasonable: Event-coherence and assemblies.Günther Palm - 1993 - Behavioral and Brain Sciences 16 (3):470-470.
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  • Psychological implications of the synchronicity hypothesis.Stellan Ohlsson - 1993 - Behavioral and Brain Sciences 16 (3):469-469.
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  • Computational and biological constraints in the psychology of reasoning.Mike Oaksford & Mike Malloch - 1993 - Behavioral and Brain Sciences 16 (3):468-469.
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  • What we know and the LTKB.Stanley Munsat - 1993 - Behavioral and Brain Sciences 16 (3):466-467.
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  • Reflections on reflexive reasoning.David L. Martin - 1993 - Behavioral and Brain Sciences 16 (3):466-466.
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  • Distributing structure over time.John E. Hummel & Keith J. Holyoak - 1993 - Behavioral and Brain Sciences 16 (3):464-464.
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  • On the artificial intelligence paradox.Steffen Hölldobler - 1993 - Behavioral and Brain Sciences 16 (3):463-464.
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  • Not all reflexive reasoning is deductive.Graeme Hirst & Dekai Wu - 1993 - Behavioral and Brain Sciences 16 (3):462-463.
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  • Preface to the special issue on connectionist symbol processing.Geoffrey E. Hinton - 1990 - Artificial Intelligence 46 (1-2):1-4.
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  • Rule acquisition and variable binding: Two sides of the same coin.P. J. Hampson - 1993 - Behavioral and Brain Sciences 16 (3):462-462.
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  • Processing capacity defined by relational complexity: Implications for comparative, developmental, and cognitive psychology.Graeme S. Halford, William H. Wilson & Steven Phillips - 1998 - Behavioral and Brain Sciences 21 (6):803-831.
    Working memory limits are best defined in terms of the complexity of the relations that can be processed in parallel. Complexity is defined as the number of related dimensions or sources of variation. A unary relation has one argument and one source of variation; its argument can be instantiated in only one way at a time. A binary relation has two arguments, two sources of variation, and two instantiations, and so on. Dimensionality is related to the number of chunks, because (...)
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  • Competing, or perhaps complementary, approaches to the dynamic-binding problem, with similar capacity limitations.Graeme S. Halford - 1993 - Behavioral and Brain Sciences 16 (3):461-462.
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  • Self-organizing neural models of categorization, inference and synchrony.Stephen Grossberg - 1993 - Behavioral and Brain Sciences 16 (3):460-461.
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  • Must we solve the binding problem in neural hardware?James W. Garson - 1993 - Behavioral and Brain Sciences 16 (3):459-460.
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  • Deconstruction of neural data yields biologically implausible periodic oscillations.Walter J. Freeman - 1993 - Behavioral and Brain Sciences 16 (3):458-459.
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  • Toward a unified behavioral and brain science.Jerome A. Feldman - 1993 - Behavioral and Brain Sciences 16 (3):458-458.
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  • Dynamic bindings by real neurons: Arguments from physiology, neural network models and information theory.Reinhard Eckhorn - 1993 - Behavioral and Brain Sciences 16 (3):457-458.
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  • Connectionism and syntactic binding of concepts.Georg Dorffner - 1993 - Behavioral and Brain Sciences 16 (3):456-457.
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  • Reasoning, learning and neuropsychological plausibility.Joachim Diederich - 1993 - Behavioral and Brain Sciences 16 (3):455-456.
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  • Making a middling mousetrap.Michael R. W. Dawson & Istvan Berkeley - 1993 - Behavioral and Brain Sciences 16 (3):454-455.
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  • From symbols to neurons: Are we there yet?Garrison W. Cottrell - 1993 - Behavioral and Brain Sciences 16 (3):454-454.
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  • Could static binding suffice?Paul R. Cooper - 1993 - Behavioral and Brain Sciences 16 (3):453-454.
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  • The cognizer's innards: A psychological and philosophical perspective on the development of thought.Andy Clark & Annette Karmiloff-Smith - 1993 - Mind and Language 8 (4):487-519.
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  • The case for connectionism.William Bechtel - 1993 - Philosophical Studies 71 (2):119-54.
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  • Currents in connectionism.William Bechtel - 1993 - Minds and Machines 3 (2):125-153.
    This paper reviews four significant advances on the feedforward architecture that has dominated discussions of connectionism. The first involves introducing modularity into networks by employing procedures whereby different networks learn to perform different components of a task, and a Gating Network determines which network is best equiped to respond to a given input. The second consists in the use of recurrent inputs whereby information from a previous cycle of processing is made available on later cycles. The third development involves developing (...)
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  • Plausible inference and implicit representation.Malcolm I. Bauer - 1993 - Behavioral and Brain Sciences 16 (3):452-453.
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  • Time phases, pointers, rules and embedding.John A. Barnden - 1993 - Behavioral and Brain Sciences 16 (3):451-452.
    This paper is a commentary on the target article by Lokendra Shastri & Venkat Ajjanagadde [S&A]: “From simple associations to systematic reasoning: A connectionist representation of rules, variables and dynamic bindings using temporal synchrony” in same issue of the journal, pp.417–451. -/- It puts S&A's temporal-synchrony binding method in a broader context, comments on notions of pointing and other ways of associating information - in both computers and connectionist systems - and mentions types of reasoning that are a challenge to (...)
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  • Quantification without variables in connectionism.John A. Barnden & Kankanahalli Srinivas - 1996 - Minds and Machines 6 (2):173-201.
    Connectionist attention to variables has been too restricted in two ways. First, it has not exploited certain ways of doing without variables in the symbolic arena. One variable-avoidance method, that of logical combinators, is particularly well established there. Secondly, the attention has been largely restricted to variables in long-term rules embodied in connection weight patterns. However, short-lived bodies of information, such as sentence interpretations or inference products, may involve quantification. Therefore short-lived activation patterns may need to achieve the effect of (...)
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  • Scaling connectionist compositional representations.John C. Flackett, John Tait & Guy Littlefair - 2004 - In Simon D. Levy & Ross Gayler (eds.), Compositional Connectionism in Cognitive Science. Aaai Press. pp. 20--24.
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  • Does Meaning Evolve?Mark D. Roberts - 2004 - Behavior and Philosophy 32 (2):401 - 426.
    A common method of making a theory more understandable is to compare it to another theory that has been better developed. Radical interpretation is a theory that attempts to explain how communication has meaning. Radical interpretation is treated as another time-dependent theory and compared to the time-dependent theory of biological evolution. The main reason for doing this is to find the nature of the time dependence; producing analogs between the two theories is a necessary prerequisite to this and brings up (...)
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