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  1. Modal‐type orthomodular logic.Graciela Domenech, Hector Freytes & Christian de Ronde - 2009 - Mathematical Logic Quarterly 55 (3):307-319.
    In this paper we enrich the orthomodular structure by adding a modal operator, following a physical motivation. A logical system is developed, obtaining algebraic completeness and completeness with respect to a Kripkestyle semantic founded on Baer*-semigroups as in [22].
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  • Logical anomalies of quantum objects. A survey.G. Peruzzi - 1990 - Foundations of Physics 20 (3):337-352.
    We discuss some aspects of the concept of “object” and “objectuation” as suggested by the articulation of modern physics. In particular we analyze the new ontological thickness of the notion ofobject in quantum mechanics and in relativistic quantum mechanics.At the end we try to formulate some modifications of the logical approach to quantum theory in order to grasp the new situation connected with relativistic quantum theory.
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  • Logical self reference, set theoretical paradoxes and the measurement problem in quantum mechanics.Maria Luisa Dalla Chiara - 1977 - Journal of Philosophical Logic 6 (1):331-347.
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  • An Alternative Propositional Calculus for Application to Empirical Sciences.Paul Weingartner - 2010 - Studia Logica 95 (1-2):233 - 257.
    The purpose of the paper is to show that by cleaning Classical Logic (CL) from redundancies (irrelevances) and uninformative complexities in the consequence class and from too strong assumptions (of CL) one can avoid most of the paradoxes coming up when CL is applied to empirical sciences including physics. This kind of cleaning of CL has been done successfully by distinguishing two types of theorems of CL by two criteria. One criterion (RC) forbids such theorems in which parts of the (...)
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  • Matrix-based logic for application in physics.Paul Weingartner - 2009 - Review of Symbolic Logic 2 (1):132-163.
    The paper offers a matrix-based logic (relevant matrix quantum physics) for propositions which seems suitable as an underlying logic for empirical sciences and especially for quantum physics. This logic is motivated by two criteria which serve to clean derivations of classical logic from superfluous redundancies and uninformative complexities. It distinguishes those valid derivations (inferences) of classical logic which contain superfluous redundancies and complexities and are in this sense from those which are or in the sense of allowing only the most (...)
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  • An exact philosophy of inexactness.Michael Katz - 1984 - Topoi 3 (1):43-53.
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  • Truth versus testability in quantum logic.Claudio Garola - 1992 - Erkenntnis 37 (2):197 - 222.
    We forward an epistemological perspective regarding non-classical logics which restores the universality of logic in accordance with the thesis of global pluralism. In this perspective every non-classical truth-theory is actually a theory of some metalinguistic concept which does not coincide with the concept of truth (described by Tarski's truth theory). We intend to apply this point of view to Quantum Logic (QL) in order to prove that its structure properties derive from properties of the metalinguistic concept of testability in Quantum (...)
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  • Sequential method in quantum logic.Hirokazu Nishimura - 1980 - Journal of Symbolic Logic 45 (2):339-352.
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  • Languages of similarity.Sŀawomir Bugajski - 1983 - Journal of Philosophical Logic 12 (1):1-18.
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  • What is quantum logic?Sławomir Bugajski - 1982 - Studia Logica 41 (4):311 - 316.
    The paper describes in detail the procedure of identification of the inner language and an inner logico of a physical theory. The procedure is a generalization of the original ideas of J. von Neuman and G. Birkhoff about quantum logic.
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  • What is quantum logic?S.?Awomir Bugajski - 1982 - Studia Logica 41 (4):311-316.
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  • Benennung und Identität in der Sprache der Physik.Peter Mittelstaedt - 1986 - Zeitschrift Für Allgemeine Wissenschaftstheorie 17 (2):265-294.
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  • Hyperintensionality and Normativity.Federico L. G. Faroldi - 2019 - Cham, Switzerland: Springer Verlag.
    Presenting the first comprehensive, in-depth study of hyperintensionality, this book equips readers with the basic tools needed to appreciate some of current and future debates in the philosophy of language, semantics, and metaphysics. After introducing and explaining the major approaches to hyperintensionality found in the literature, the book tackles its systematic connections to normativity and offers some contributions to the current debates. The book offers undergraduate and graduate students an essential introduction to the topic, while also helping professionals in related (...)
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  • Quantum logic, Hilbert space, revision theory.Kurt Engesser & Dov M. Gabbay - 2002 - Artificial Intelligence 136 (1):61-100.
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