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  1. Histoire et philosophie de la mécanique quantique Travaux récents.Catherine Chevalley - 1989 - Revue de Synthèse 110 (3-4):469-481.
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  • Quantization: History and problems.Andrea Carosso - 2022 - Studies in History and Philosophy of Science Part A 96 (C):35-50.
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  • The birth of quantum mechanics from the spirit of radiation theory.Alexander S. Blum & Martin Jähnert - 2022 - Studies in History and Philosophy of Science Part A 91 (C):125-147.
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  • Quantum mechanics, radiation, and the equivalence proof.Alexander Blum & Martin Jähnert - 2024 - Archive for History of Exact Sciences 78 (5):567-616.
    This paper re-evaluates the formative year of quantum mechanics—from Heisenberg’s first paper on matrix mechanics to Schrödinger’s equivalence proof—by focusing on the role of radiation in the emerging theory. We argue that the radiation problem played a key role in early quantum mechanics, a role that has not been taken into account in the standard histories. Radiation was perceived by the main protagonists of matrix and wave mechanics as a central lacuna in these emerging theories and continued to contribute to (...)
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  • Formalism, ontology and methodology in Bohmian mechanics.Darrin W. Belousek - 2003 - Foundations of Science 8 (2):109-172.
    The relationship between mathematical formalism, physical interpretation and epistemological appraisal in the practice of physical theorizing is considered in the context of Bohmian mechanics. After laying outthe formal mathematical postulates of thetheory and recovering the historical roots ofthe present debate over the meaning of Bohmianmechanics from the early debate over themeaning of Schrödinger's wave mechanics,several contemporary interpretations of Bohmianmechanics in the literature are discussed andcritiqued with respect to the aim of causalexplanation and an alternative interpretationis proposed. Throughout, the over-arching aimis (...)
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  • Einstein's 1927 unpublished hidden-variable theory: Its background, context and significance.Darrin W. Belousek - 1996 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 27 (4):437-461.
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  • Einstein's 1927 unpublished hidden-variable theory: Its background, context and significance.Darrin W. Belousek - 1996 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 27 (4):437-461.
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  • ‘Against the stream’—Schrödinger's interpretation of quantum mechanics.Mara Beller - 1997 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 28 (3):421-432.
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  • ‘Against the stream’—Schrödinger's interpretation of quantum mechanics.Mara Beller - 1997 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 28 (3):421-432.
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  • On the history of the quantum.Jeroen van Dongen, Dennis Dieks, Jos Uffink & A. J. Kox - 2009 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 40 (4):277-279.
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  • (1 other version)Erwin Schrödinger, Anschaulichkeit, and quantum theory.Henk W. de Regt - 1997 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 28 (4):461-481.
    Early in 1926 Erwin Schrodinger presented his famous theory of wave mechanics to account for atomic phenomena. It is often assumed that Schrodinger’s work reflected a realist philosophy. In this article, I will argue that this assumption is incorrect.
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  • Quantum statistics, identical particles and correlations.Dennis Dieks - 1990 - Synthese 82 (1):127 - 155.
    It is argued that the symmetry and anti-symmetry of the wave functions of systems consisting of identical particles have nothing to do with the observational indistinguishability of these particles. Rather, a much stronger conceptual indistinguishability is at the bottom of the symmetry requirements. This can be used to argue further, in analogy to old arguments of De Broglie and Schrödinger, that the reality described by quantum mechanics has a wave-like rather than particle-like structure. The question of whether quantum statistics alone (...)
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  • Models and methodologies in current theoretical high-energy physics.James T. Cushing - 1982 - Synthese 50 (1):5 - 101.
    A case study of the development of quantum field theory and of S-matrix theory, from their inceptions to the present, is presented. The descriptions of science given by Kuhn and by Lakatos are compared and contrasted as they apply to this case study. The episodes of the developments of these theories are then considered as candidates for competing research programs in Lakatos' methodology of scientific research programs. Lakatos' scheme provides a reasonable overall description and a plausible assessment of the relative (...)
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  • Erwin Schrödinger and the Wave Equation: The Crucial Phase.Helge Kragh - 1982 - Centaurus 26 (2):154-197.
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  • The Theory of (Exclusively) Local Beables.Travis Norsen - 2010 - Foundations of Physics 40 (12):1858-1884.
    It is shown how, starting with the de Broglie–Bohm pilot-wave theory, one can construct a new theory of the sort envisioned by several of QM’s founders: a Theory of Exclusively Local Beables (TELB). In particular, the usual quantum mechanical wave function (a function on a high-dimensional configuration space) is not among the beables posited by the new theory. Instead, each particle has an associated “pilot-wave” field (living in physical space). A number of additional fields (also fields on physical space) maintain (...)
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  • The equivalence myth of quantum mechanics—part II.F. A. Muller - 1997 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 28 (2):219-247.
    The author endeavours to show two things: first, that Schrödingers (and Eckarts) demonstration in March (September) 1926 of the equivalence of matrix mechanics, as created by Heisenberg, Born, Jordan and Dirac in 1925, and wave mechanics, as created by Schrödinger in 1926, is not foolproof; and second, that it could not have been foolproof, because at the time matrix mechanics and wave mechanics were neither mathematically nor empirically equivalent. That they were is the Equivalence Myth. In order to make the (...)
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  • The classical roots of wave mechanics: Schrödinger's transformations of the optical-mechanical analogy.Christian Joas & Christoph Lehner - 2009 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 40 (4):338-351.
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  • Can the wave function in configuration space be replaced by single-particle wave functions in physical space?Travis Norsen, Damiano Marian & Xavier Oriols - 2015 - Synthese 192 (10):3125-3151.
    The ontology of Bohmian mechanics includes both the universal wave function and particles. Proposals for understanding the physical significance of the wave function in this theory have included the idea of regarding it as a physically-real field in its 3N-dimensional space, as well as the idea of regarding it as a law of nature. Here we introduce and explore a third possibility in which the configuration space wave function is simply eliminated—replaced by a set of single-particle pilot-wave fields living in (...)
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  • (1 other version)A simplified genesis of quantum mechanics.Olivier Darrigol - 2009 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 40 (2):151-166.
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  • (1 other version)Erwin Schrödinger, Anschaulichkeit, and quantum theory.Henk W. de Regt - 1997 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 28 (4):461-481.
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  • (1 other version)Analogy, extension, and novelty: Young Schrödinger on electric phenomena in solids.Christian Joas & Shaul Katzir - 2011 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 42 (1):43-53.
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  • (1 other version)Analogy, extension, and novelty: Young Schrödinger on electric phenomena in solids.Christian Joas & Shaul Katzir - 2011 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 42 (1):43-53.
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  • (1 other version)A simplified genesis of quantum mechanics.Olivier Darrigol - 2009 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 40 (2):151-166.
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  • Schrödinger and the interpretation of quantum mechanics.Fritz Rohrlich - 1987 - Foundations of Physics 17 (12):1205-1220.
    On the occasion of the centennial of his birth, Schrödinger's life and views are sketched and his critique of the interpretation of quantum mechanics accepted at his time is examined. His own interpretation, which he had to abandon after a short time, provides a prime example of the way in which the tentative meaning of central theoretical terms in a new and revolutionary theory often fails. Schrödinger's strong philosophical convictions have played a key role in his refusal to break with (...)
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  • The fourth structure of physical reality.Gerben J. Stavenga - 1983 - Zeitschrift Für Allgemeine Wissenschaftstheorie 14 (2):354-367.
    In the course of a study of elementary particles, an analysis is given of a fundamental presupposition of many research programs, namely the belief in the ultimate unity of physics. It is argued tht this unity-idea is incorrect. By classical physics, relativity theory and quantum theory three distinct structures of nature are revealed. Next, the essential aspect of measurement, that a measurement always results in a record, is analysed. Recording implies irreversibility and entropy production. In modern elementary particle physics the (...)
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