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  1. Theory of Recursive Functions and Effective Computability.Hartley Rogers - 1971 - Journal of Symbolic Logic 36 (1):141-146.
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  • Trial and error predicates and the solution to a problem of Mostowski.Hilary Putnam - 1965 - Journal of Symbolic Logic 30 (1):49-57.
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  • (1 other version)A universal inductive inference machine.Daniel N. Osherson, Michael Stob & Scott Weinstein - 1991 - Journal of Symbolic Logic 56 (2):661-672.
    A paradigm of scientific discovery is defined within a first-order logical framework. It is shown that within this paradigm there exists a formal scientist that is Turing computable and universal in the sense that it solves every problem that any scientist can solve. It is also shown that universal scientists exist for no regular logics that extend first-order logic and satisfy the Löwenheim-Skolem condition.
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  • (1 other version)Logic and probabilistic systems.Franco Montagna, Giulia Simi & Andrea Sorbi - 1996 - Archive for Mathematical Logic 35 (4):225-261.
    Following some ideas of Roberto Magari, we propose trial and error probabilistic functions, i.e. probability measures on the sentences of arithmetic that evolve in time by trial and error. The set ℐ of the sentences that get limit probability 1 is a Π3—theory, in fact ℐ can be a Π3—complete set. We prove incompleteness results for this setting, by showing for instance that for every k > 0 there are true Π3—sentences that get limit probability less than 1/2k. No set (...)
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  • A renaissance of empiricism in the recent philosophy of mathematics.Imre Lakatos - 1976 - British Journal for the Philosophy of Science 27 (3):201-223.
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  • Thinking may be more than computing.Peter Kugel - 1986 - Cognition 22 (2):137-198.
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  • Experimental logics and Π3 0 theories.Petr Hájek - 1977 - Journal of Symbolic Logic 42 (4):515-522.
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  • The Logic of Reliable Inquiry.Kevin Kelly - 1998 - British Journal for the Philosophy of Science 49 (2):351-354.
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  • (1 other version)Limiting recursion.E. Mark Gold - 1965 - Journal of Symbolic Logic 30 (1):28-48.
    A class of problems is called decidable if there is an algorithm which will give the answer to any problem of the class after a finite length of time. The purpose of this paper is to discuss the classes of problems that can be solved by infinitely long decision procedures in the following sense: An algorithm is given which, for any problem of the class, generates an infinitely long sequence of guesses. The problem will be said to be solved in (...)
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  • (1 other version)S. Barry Cooper, Computability Theory: Chapman & Hall/crc, 2003, US$ 76.95, 424 pp., ISBN-10: 1584882379, ISBN-13: 978-1584882374, hardcover. Dimensions (in inches): 9.7 × 6.2 × 1.1. [REVIEW]Lars Kristiansen - 2007 - Studia Logica 86 (1):145-146.
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  • Intelligent machinery, a heretical theory.A. M. Turing - 1996 - Philosophia Mathematica 4 (3):256-260.
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  • Turing projectability.Timothy McCarthy & Stewart Shapiro - 1987 - Notre Dame Journal of Formal Logic 28 (4):520-535.
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