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  1. (1 other version)Quantum Theory and Measurement.John Archibald Wheeler & Wojciech Hubert Zurek - 1985 - Philosophy of Science 52 (3):480-481.
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  • (1 other version)”Relative state’ formulation of quantum mechanics.Hugh Everett - 1957 - Reviews of Modern Physics 29 (3):454--462.
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  • Quantum theory and time asymmetry.H. D. Zeh - 1979 - Foundations of Physics 9 (11-12):803-818.
    The relation between quantum measurement and thermodynamically irreversible processes is investigated. The reduction of the state vector is fundamentally asymmetric in time and shows an observer-relatedness which may explain the double interpretation of the state vector as a representation of physical states as well as ofinformation about physical states. The concept of relevance being used in all statistical theories of irreversible thermodynamics is demonstrated to be based on the same observer-relatedness. Quantum theories of irreversible processes implicitly use an objectivized process (...)
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  • (1 other version)A Suggested Interpretation of the Quantum Theory in Terms of ‘Hidden’ Variables, I and II.David Bohm - 1952 - Physical Review (85):166-193.
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  • The Many-Worlds Interpretation of Quantum Mechanics.B. DeWitt & N. Graham (eds.) - 1973 - Princeton UP.
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  • (1 other version)Are there quantum jumps ?E. Schrödinger - 1952 - British Journal for the Philosophy of Science 3 (11):233-242.
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  • Interpreting the many-worlds interpretation.David Albert & Barry Loewer - 1988 - Synthese 77 (November):195-213.
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  • Decoherence, relative states, and evolutionary adaptation.Simon Saunders - 1993 - Foundations of Physics 23 (12):1553-1585.
    We review the decoherent histories approach to the interpretation of quantum mechanics. The Everett relative-state theory is reformulated in terms of decoherent histories. A model of evolutionary adaptation is shown to imply decoherence. A general interpretative framework is proposed: probability and value-definiteness are to have a similar status to the attribution of tense in classical spacetime theory.
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  • A priori probability and localized observers.Matthew J. Donald - 1992 - Foundations of Physics 22 (9):1111-1172.
    A physical and mathematical framework for the analysis of probabilities in quantum theory is proposed and developed. One purpose is to surmount the problem, crucial to any reconciliation between quantum theory and space-time physics, of requiring instantaneous “wave-packet collapse” across the entire universe. The physical starting point is the idea of an observer as an entity, localized in space-time, for whom any physical system can be described at any moment, by a set of (not necessarily pure) quantum states compatible with (...)
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  • (1 other version)The Theory of the Universal Wavefunction.Hugh Everett - 1973 - In B. DeWitt & N. Graham (eds.), The Many-Worlds Interpretation of Quantum Mechanics. Princeton UP.
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  • Quantum theory and the brain.Matthew Donald - unknown
    A human brain operates as a pattern of switching. An abstract definition of a quantum mechanical switch is given which allows for the continual random fluctuations in the warm wet environment of the brain. Among several switch-like entities in the brain, we choose to focus on the sodium channel proteins. After explaining what these are, we analyse the ways in which our definition of a quantum switch can be satisfied by portions of such proteins. We calculate the perturbing effects of (...)
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  • Toward a quantum theory of observation.H. D. Zeh - 1973 - Foundations of Physics 3 (1):109-116.
    The program of a physical concept of information is outlined in the framework of quantum theory. A proposal is made for how to avoid the intuitive introduction of observables. The conventional and the Everett interpretations in principle may lead to different dynamical consequences. An ensemble description occurs without the introduction of an abstract concept of information.
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  • (1 other version)On the interpretation of measurement in quantum theory.H. D. Zeh - 1970 - Foundations of Physics 1 (1):69-76.
    It is demonstrated that neither the arguments leading to inconsistencies in the description of quantum-mechanical measurement nor those “explaining” the process of measurement by means of thermodynamical statistics are valid. Instead, it is argued that the probability interpretation is compatible with an objective interpretation of the wave function.
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  • (1 other version)On the Einstein Podolsky Rosen paradox.J. S. Bell - 2004 - In John Stewart Bell (ed.), Speakable and unspeakable in quantum mechanics: collected papers on quantum philosophy. New York: Cambridge University Press. pp. 14--21.
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  • Review: Q uantum Mechanics and Experience. [REVIEW]Lawrence Sklar - 1996 - Philosophy and Phenomenological Research 56 (4):973-975.
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  • Mind, Brain and the Quantum.Andy Clark - 1990 - Philosophical Quarterly 40 (161):509-514.
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  • A mathematical characterization of the physical structure of observers.Matthew J. Donald - 1995 - Foundations of Physics 25 (4):529-571.
    It is proposed that the physical structure of an observer in quantum mechanics is constituted by a pattern of elementary localized switching events. A key preliminary step in giving mathematical expression to this proposal is the introduction of an equivalence relation on sequences of spacetime sets which relates a sequence to any other sequence to which it can be deformed without change of causal arrangement. This allows an individual observer to be associated with a finite structure. The identification of suitable (...)
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