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  1. Reichenbach and the logic of quantum mechanics.Gary M. Hardegree - 1977 - Synthese 35 (1):3 - 40.
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  • Algebraic constraints on hidden variables.Arthur Fine & Paul Teller - 1978 - Foundations of Physics 8 (7-8):629-636.
    In the contemporary discussion of hidden variable interpretations of quantum mechanics, much attention has been paid to the “no hidden variable” proof contained in an important paper of Kochen and Specker. It is a little noticed fact that Bell published a proof of the same result the preceding year, in his well-known 1966 article, where it is modestly described as a corollary to Gleason's theorem. We want to bring out the great simplicity of Bell's formulation of this result and to (...)
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  • Simultaneous measurement and joint probability distributions in quantum mechanics.Willem M. de Muynck, Peter A. E. M. Janssen & Alexander Santman - 1979 - Foundations of Physics 9 (1-2):71-122.
    The problem of simultaneous measurement of incompatible observables in quantum mechanics is studied on the one hand from the viewpoint of an axiomatic treatment of quantum mechanics and on the other hand starting from a theory of measurement. It is argued that it is precisely such a theory of measurement that should provide a meaning to the axiomatically introduced concepts, especially to the concept of observable. Defining an observable as a class of measurement procedures yielding a certain prescribed result for (...)
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  • Semantic alternatives in partial Boolean quantum logic.R. I. G. Hughes - 1985 - Journal of Philosophical Logic 14 (4):411 - 446.
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  • Review essay.Allen Stairs - 1991 - Synthese 86 (1):99-122.
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  • Hidden variables and locality.Jeffrey Bub - 1976 - Foundations of Physics 6 (5):511-525.
    Bell's problem of the possibility of a local hidden variable theory of quantum phenomena is considered in the context of the general problem of representing the statistical states of a quantum mechanical system by measures on a classical probability space, and Bell's result is presented as a generalization of Maczynski's theorem for maximal magnitudes. The proof of this generalization is shown to depend on the impossibility of recovering the quantum statistics for sequential probabilities in a classical representation without introducing a (...)
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  • Quantum formalism via signal analysis.L. Kannenberg - 1989 - Foundations of Physics 19 (4):367-383.
    The general properties of signals permit a nonaxiomatic reconstruction of the quantum “probability” formalism independent of the standard Copenhagen interpretation of quantum mechanics. Performance standards are specified for candidate clock, signaller, and reflector devices, and it is shown that the resulting formalism forces identification of a “probability”- or “intensity”-like structure as the absolute square of an amplitude, the relative phases of amplitudes appearing explicitly in the “probability” composition law. Inequalities are produced which on one interpretation reduce to the Heisenberg relations, (...)
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