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  1. The Einstein-podolsky-Rosen argument in quantum theory.Arthur Fine - 2008 - Stanford Encyclopedia of Philosophy.
    In the May 15, 1935 issue of Physical Review Albert Einstein co-authored a paper with his two postdoctoral research associates at the Institute for Advanced Study, Boris Podolsky and Nathan Rosen. The article was entitled “Can Quantum Mechanical Description of Physical Reality Be Considered Complete?” (Einstein et al. 1935). Generally referred to as “EPR”, this paper quickly became a centerpiece in the debate over the interpretation of the quantum theory, a debate that continues today. The paper features a striking case (...)
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  • Rules and Meaning in Quantum Mechanics.Iulian D. Toader - manuscript
    This book concerns the metasemantics of quantum mechanics (QM). Roughly, it pursues an investigation at an intersection of the philosophy of physics and the philosophy of semantics, and it offers a critical analysis of rival explanations of the semantic facts of standard QM. Two problems for such explanations are discussed: categoricity and permanence of rules. New results include 1) a reconstruction of Einstein's incompleteness argument, which concludes that a local, separable, and categorical QM cannot exist, 2) a reinterpretation of Bohr's (...)
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  • This Year's Nobel Prize (2022) in Physics for Entanglement and Quantum Information: the New Revolution in Quantum Mechanics and Science.Vasil Penchev - 2023 - Philosophy of Science eJournal (Elsevier: SSRN) 18 (33):1-68.
    The paper discusses this year’s Nobel Prize in physics for experiments of entanglement “establishing the violation of Bell inequalities and pioneering quantum information science” in a much wider, including philosophical context legitimizing by the authority of the Nobel Prize a new scientific area out of “classical” quantum mechanics relevant to Pauli’s “particle” paradigm of energy conservation and thus to the Standard model obeying it. One justifies the eventual future theory of quantum gravitation as belonging to the newly established quantum information (...)
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  • Quantum-information conservation. The problem about “hidden variables”, or the “conservation of energy conservation” in quantum mechanics: A historical lesson for future discoveries.Vasil Penchev - 2020 - Energy Engineering (Energy) eJournal (Elsevier: SSRN) 3 (78):1-27.
    The explicit history of the “hidden variables” problem is well-known and established. The main events of its chronology are traced. An implicit context of that history is suggested. It links the problem with the “conservation of energy conservation” in quantum mechanics. Bohr, Kramers, and Slaters (1924) admitted its violation being due to the “fourth Heisenberg uncertainty”, that of energy in relation to time. Wolfgang Pauli rejected the conjecture and even forecast the existence of a new and unknown then elementary particle, (...)
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  • Einstein on Locality and Separability.Don Howard - 1985 - Studies in History and Philosophy of Science Part A 16 (3):171.
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  • Quantum entanglement and information.Jeffrey Bub - 2008 - Stanford Encyclopedia of Philosophy.
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  • Lectura filosófica de la constitución histórica del principio de complementariedad de Bohr.Carmen Sánchez Ovcharov - 2018 - Human Review. International Humanities Review / Revista Internacional de Humanidades 7 (1):33-38.
    En este artículo se realiza un recorrido cronológico por las propuestas teóricas y experimentos que condujeron a la constitución del denominado principio de complementariedad, enunciado por Bohr. Se muestra como a dicho principio subyacen dos modelos clásicos (ondulatorio y corpuscular) que se toman como analogía para describir y predecir fenómenos de carácter cuántico. Dichos modelos son excluyentes en ambos ámbitos, clásico y cuántico; no obstante, los fenómenos cuantizados requieren la aplicación – aunque no simultánea - de ambos para conseguir un (...)
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  • Towards a Realistic Interpretation of Quantum Mechanics Providing a Model of the Physical World.Emilio Santos - 2015 - Foundations of Science 20 (4):357-386.
    It is argued that a realistic interpretation of quantum mechanics is possible and useful. Current interpretations, from “Copenhagen” to “many worlds” are critically revisited. The difficulties for intuitive models of quantum physics are pointed out and possible solutions proposed. In particular the existence of discrete states, the quantum jumps, the alleged lack of objective properties, measurement theory, the probabilistic character of quantum physics, the wave–particle duality and the Bell inequalities are analyzed. The sketch of a realistic picture of the quantum (...)
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