Results for 'Stochastic Einstein Nonlocaljty'

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  1. Jeremy Butterfield.Outcome Dependence & Stochastic Einstein Nonlocaljty - 1994 - In Dag Prawitz & Dag Westerståhl (eds.), Logic and Philosophy of Science in Uppsala. Kluwer Academic Publishers. pp. 385.
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  2. Stochastic Einstein Locality Revisited.Jeremy Butterfield - 2007 - British Journal for the Philosophy of Science 58 (4):805-867.
    I discuss various formulations of stochastic Einstein locality (SEL), which is a version of the idea of relativistic causality, that is, the idea that influences propagate at most as fast as light. SEL is similar to Reichenbach's Principle of the Common Cause (PCC), and Bell's Local Causality. My main aim is to discuss formulations of SEL for a fixed background spacetime. I previously argued that SEL is violated by the outcome dependence shown by Bell correlations, both in quantum (...)
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  3.  68
    Stochastic Einstein-locality and the bell theorems.Geoffrey Hellman - 1982 - Synthese 53 (3):461 - 504.
    Standard proofs of generalized Bell theorems, aiming to restrict stochastic, local hidden-variable theories for quantum correlation phenomena, employ as a locality condition the requirement of conditional stochastic independence. The connection between this and the no-superluminary-action requirement of the special theory of relativity has been a topic of controversy. In this paper, we introduce an alternative locality condition for stochastic theories, framed in terms of the models of such a theory (§2). It is a natural generalization of a (...)
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  4.  13
    Outcome dependence and stochastic Einstein nonlocality.Jeremy Butterfield - 1994 - In Dag Prawitz & Dag Westerståhl (eds.), Logic and Philosophy of Science in Uppsala. Kluwer Academic Publishers. pp. 385--424.
  5.  96
    Are prohibitions of superluminal causation by stochastic Einstein locality and by absence of Lewisian probabilistic counterfactual causality equivalent?Miklós Rédei - 1993 - Philosophy of Science 60 (4):608-618.
    Butterfield's (1992a,b,c) claim of the equivalence of absence of Lewisian probabilistic counterfactual causality (LC) to Hellman's stochastic Einstein locality (SEL) is questioned. Butterfield's assumption on which the proof of his claim is based would suffice to prove that SEL implies absence of LC also for appropriately given versions of these notions in algebraic quantum field theory, but the assumption is not an admissible one. The conclusion must be that the relation of SEL and absence of LC is open, (...)
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  6.  47
    Is algebraic lorentz-covariant quantum field theory stochastic Einstein local?F. A. Muller & Jeremy Butterfield - 1994 - Philosophy of Science 61 (3):457-474.
    The general context of this paper is the locality problem in quantum theory. In a recent issue of this journal, Redei (1991) offered a proof of the proposition that algebraic Lorentz-covariant quantum field theory is past stochastic Einstein local. We show that Redei's proof is either spurious or circular, and that it contains two deductive fallacies. Furthermore, we prove that the mentioned theory meets the stronger condition of stochastic Haag locality.
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  7.  29
    Possible test of the reality of superluminal phase waves and particle phase space motions in the Einstein-de Broglie-Bohm causal stochastic interpretation of quantum mechanics.J. P. Vigier - 1994 - Foundations of Physics 24 (1):61-83.
    Recent double-slit type neutron experiments (1) and their theoretical implications (2) suggest that, since one can tell through which slit the individual neutrons travel, coherent wave packets remain nonlocally coupled (with particles one by one), even in the case of wide spatial separation. Following de Broglie's initial proposal, (3) this property can be derived from the existence of the persisting action of real superluminal physical phase waves considered as building blocks of the real subluminal wave field packets which surround individual (...)
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  8.  45
    Einstein, Bohm, and Leggett-Garg.Guido Bacciagaluppi - unknown
    In a recent paper, I have analysed and criticised Leggett and Garg’s argument to the effect that macroscopic realism contradicts quantum mechanics, by contrasting their assumptions to the example of Bell’s stochastic pilot-wave theories, and have applied Dzhafarov and Kujala’s analysis of contextuality in the presence of signalling to the case of the Leggett–Garg inequalities. In this chapter, I discuss more in general the motivations for macroscopic realism, taking a cue from Einstein’s criticism of the Bohm theory, then (...)
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  9. The Einstein-Podolsky-Rosen Argument and the Bell Inequalities.László E. Szabó - 2007 - Internet Encyclopedia of Philosophy.
    In 1935, Einstein, Podolsky, and Rosen (EPR) published an important paper in which they claimed that the whole formalism of quantum mechanics together with what they called a “Reality Criterion” imply that quantum mechanics cannot be complete. That is, there must exist some elements of reality that are not described by quantum mechanics. They concluded that there must be a more complete description of physical reality involving some hidden variables that can characterize the state of affairs in the world (...)
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  10. Stochastic microcausality in relativistic quantum mechanics.D. P. Greenwood & E. Prugovečki - 1984 - Foundations of Physics 14 (9):883-906.
    A recently formulated concept of stochastic localizability is shown to be consistent with a concept of stochastic microcausality, which avoids the conclusions of Hegerfeldt's no-go theorem as to the inconsistency of sharp localizability of quantum particles and Einstein causality. The proposed localizability on quantum space-time is shown to lead to strict asymptotic causality. For finite time evolutions, upper bounds on propagation to the exterior of stochastic light cones are derived which show that the resulting probabilities are (...)
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  11.  50
    Derivation of inertial forces from the Einstein-de Broglie-Bohm (E.d.B.B.) causal stochastic interpretation of quantum mechanics. [REVIEW]Jean-Pierre Vigier - 1995 - Foundations of Physics 25 (10):1461-1494.
    The physical origin of inertial forces is shown to be a consequence of the local interaction of Dirac's real covariant ether model(1) with accelerated microobjects, considered as real extended particlelike solitons, piloted by surrounding subluminal real wave fields packets.(2) Their explicit form results from the application of local inertial Lorentz transformations to the particles submitted to noninertial velocitydependent accelerations, i.e., constitute a natural extension of Lorentz's interpretation of restricted relativity.(3) Indeed Dirac's real physical covariant ether model implies inertial forces if (...)
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  12. Einstein, bell, and nonseparable realism.Federico Laudisa - 1995 - British Journal for the Philosophy of Science 46 (3):309-329.
    In the context of stochastic hidden variable theories, Howard has argued that the role of separability—spatially separated systems possess distinct real states—has been underestimated. Howard claims that separability is equivalent to Jarrett‘s completeness: this equivalence should imply that the Bell theorem forces us to give up either separability or locality. Howard's claim, however, is shown to be ill founded since it is based on an implausible assumption. The necessity of sharply distinguishing separability and locality is emphasized: a quantitative formulation (...)
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  13. The Einstein-Podolsky-Rosen Argument and the Bell Inequalities.László E. Szabó - 2008 - Internet Encyclopedia of Philosophy.
    In 1935, Einstein, Podolsky, and Rosen (EPR) published an important paper in which they claimed that the whole formalism of quantum mechanics together with what they called a “Reality Criterion” imply that quantum mechanics cannot be complete. That is, there must exist some elements of reality that are not described by quantum mechanics. They concluded that there must be a more complete description of physical reality involving some hidden variables that can characterize the state of affairs in the world (...)
     
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  14.  27
    Spin correlation in stochastic mechanics.William G. Faris - 1982 - Foundations of Physics 12 (1):1-26.
    Stochastic mechanics may be used to described the spin of atomic particles. The spin variables have the same expectations as in quantum mechanics, but not the same distributions. They play the role of hidden variables that influence, but do not determine, the results of Stern-Gerlach experiments involving magnets. During the course of such an experiment spin becomes correlated with position. The case of two particles with zero total spin occurs in Bohm's version of the Einstein-Rosen-Podolsky experiment.
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  15.  41
    Short-time stochastic electron.Paul D. Raskin - 1978 - Foundations of Physics 8 (1-2):31-44.
    As in previous stochastic interpretations of quantum mechanics, the electron is treated as a modified Brownian particle. Here, however, the analysis is based on extensions of the short-time Ornstein-Uhlenbeck description of classical Brownian motion, rather than the approximate, long-time Einstein-Smoluchowski treatment utilized in the earlier work. It is shown that Schrödinger's equation with its proper probabilistic interpretation emerges as an asymptotic description of such a system. After reviewing relevant aspects of Brownian motion, the appropriate equation for the displacement (...)
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  16.  95
    Black Hole Fluctuations and Backreaction in Stochastic Gravity.Sukanya Sinha, Alpan Raval & B. L. Hu - 2003 - Foundations of Physics 33 (1):37-64.
    We present a framework for analyzing black hole backreaction from the point of view of quantum open systems using influence functional formalism. We focus on the model of a black hole described by a radially perturbed quasi-static metric and Hawking radiation by a conformally coupled massless quantum scalar field. It is shown that the closed-time-path (CTP) effective action yields a non-local dissipation term as well as a stochastic noise term in the equation of motion, the Einstein–Langevin equation. Once (...)
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  17.  19
    Stern–Gerlach, EPRB and Bell Inequalities: An Analysis Using the Quantum Hamilton Equations of Stochastic Mechanics.Wolfgang Paul & Michael Beyer - 2024 - Foundations of Physics 54 (2):1-25.
    The discussion of the recently derived quantum Hamilton equations for a spinning particle is extended to spin measurement in a Stern–Gerlach experiment. We show that this theory predicts a continuously changing orientation of the particles magnetic moment over the course of its motion across the Stern–Gerlach apparatus. The final measurement results agree with experiment and with predictions of the Pauli equation. Furthermore, the Einstein–Podolsky–Rosen–Bohm thought experiment is investigated, and the violation of Bells’s inequalities is reproduced within this stochastic (...)
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  18.  75
    Might Quantum-Induced Deviations from the Einstein Equations Detectably Affect Gravitational Wave Propagation?Adrian Kent - 2013 - Foundations of Physics 43 (6):707-718.
    A quantum measurement-like event can produce any of a number of macroscopically distinct results, with corresponding macroscopically distinct gravitational fields, from the same initial state. Hence the probabilistically evolving large-scale structure of space-time is not precisely or even always approximately described by the deterministic Einstein equations.Since the standard treatment of gravitational wave propagation assumes the validity of the Einstein equations, it is questionable whether we should expect all its predictions to be empirically verified. In particular, one might expect (...)
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  19.  40
    Prequantum Classical Statistical Field Theory: Schrödinger Dynamics of Entangled Systems as a Classical Stochastic Process. [REVIEW]Andrei Khrennikov - 2011 - Foundations of Physics 41 (3):317-329.
    The idea that quantum randomness can be reduced to randomness of classical fields (fluctuating at time and space scales which are essentially finer than scales approachable in modern quantum experiments) is rather old. Various models have been proposed, e.g., stochastic electrodynamics or the semiclassical model. Recently a new model, so called prequantum classical statistical field theory (PCSFT), was developed. By this model a “quantum system” is just a label for (so to say “prequantum”) classical random field. Quantum averages can (...)
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  20.  32
    De Broglie's wave particle duality in the stochastic interpretation of quantum mechanics: A testable physical assumption. [REVIEW]Ph Gueret & J. -P. Vigier - 1982 - Foundations of Physics 12 (11):1057-1083.
    If one starts from de Broglie's basic relativistic assumptions, i.e., that all particles have an intrinsic real internal vibration in their rest frame, i.e., hv 0 =m 0 c 2 ; that when they are at any one point in space-time the phase of this vibration cannot depend on the choice of the reference frame, then, one can show (following Mackinnon (1) ) that there exists a nondispersive wave packet of de Broglie's waves which can be assimilated to the nonlinear (...)
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  21. Can Quantum-Mechanical Description of Physical Reality Be Considered Complete?Albert Einstein, Boris Podolsky & Nathan Rosen - 1935 - Physical Review (47):777-780.
  22.  34
    The Principle of Relativity.Albert Einstein - 1920 - [Calcutta]: Dover Publications. Edited by H. Minkowski, Meghnad Saha & Satyendranath Bose.
    This collection of original papers on the special and general theories of relativity constitutes an indispensable part of a library on relativity. Here are the 11 papers that forged the general and special theories of relativity: seven papers by Einstein, plus two papers by Lorentz and one each by Minkowski and Weyl.
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  23.  47
    Maxwell electromagnetic theory, Planck's radiation law, and Bose—Einstein statistics.H. M. FranÇa, A. Maia & C. P. Malta - 1996 - Foundations of Physics 26 (8):1055-1068.
    We give an example in which it is possible to understand quantum statistics using classical concepts. This is done by studying the interaction of chargedmatter oscillators with the thermal and zeropoint electromagnetic fields characteristic of quantum electrodynamics and classical stochastic electrodynamics. Planck's formula for the spectral distribution and the elements of energy hw are interpreted without resorting to discontinuities. We also show the aspects in which our model calculation complement other derivations of blackbody radiation spectrum without quantum assumptions.
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  24. On the method of theoretical physics.Albert Einstein - 1934 - Philosophy of Science 1 (2):163-169.
    If you wish to learn from the theoretical physicist anything about the methods which he uses, I would give you the following piece of advice: Don't listen to his words, examine his achievements. For to the discoverer in that field, the constructions of his imagination appear so necessary and so natural that he is apt to treat them not as the creations of his thoughts but as given realities.
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  25. On the electrodynamics of moving bodies.Albert Einstein - 1920 - In The Principle of Relativity. [Calcutta]: Dover Publications. pp. 35-65.
    It is known that Maxwell’s electrodynamics—as usually understood at the present time—when applied to moving bodies, leads to asymmetries which do not appear to be inherent in the phenomena. Take, for example, the reciprocal electrodynamic action of a magnet and a conductor. The observable phenomenon here depends only on the relative motion of the conductor and the magnet, whereas the customary view draws a sharp distinction between the two cases in which either the one or the other of these bodies (...)
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  26.  14
    Relativity: The Special and the General Theory.Albert Einstein - 2001 - Routledge.
    Time magazine's "Man of the Century", Albert Einstein is the founder of modern physics and his theory of relativity is the most important scientific idea of the modern era. In this short book, Einstein explains, using the minimum of mathematical terms, the basic ideas and principles of the theory that has shaped the world we live in today. Unsurpassed by any subsequent books on relativity, this remains the most popular and useful exposition of Einstein's immense contribution to (...)
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  27.  10
    The Meaning of Relativity.Albert Einstein - 1922 - London,: Routledge. Edited by Edwin P. Adams.
  28.  6
    The Meaning of Relativity.Albert Einstein - 1922 - London,: Routledge. Edited by Edwin P. Adams.
  29.  54
    Relativity: The Special and General Theory.Albert Einstein - 1921 - Routledge.
    Relativity is the most important scientific idea of the twentieth century. Albert Einstein is the unquestioned founder of modern physics. His Special and General theories of Relativity introduced the idea to the world. In this classic short book he explains clearly, using the minimum amount of mathematical terms, the basic ideas and principles of his theory of Relativity. Unsurpassed by any subsequent books on Relativity, this remains the most popular and useful exposition of Einstein's immense contribution to human (...)
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  30. The Evolution of Physics.Albert Einstein & Léopold Infeld - 1939 - Revue de Métaphysique et de Morale 46 (1):173-173.
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  31.  9
    Relativity: The Special and the General Theory.Albert Einstein - 2001 - Routledge.
    _Time_'s 'Man of the Century', Albert Einstein is the unquestioned founder of modern physics. His theory of relativity is the most important scientific idea of the modern era. In this short book Einstein explains, using the minimum of mathematical terms, the basic ideas and principles of the theory which has shaped the world we live in today. Unsurpassed by any subsequent books on relativity, this remains the most popular and useful exposition of Einstein's immense contribution to human (...)
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  32.  49
    Quanten‐mechanik und wirklichkeit.A. Einstein - 1948 - Dialectica 2 (3‐4):320-324.
    ZusammenfassungFasst man die Ψ‐Funktion in der Quantenmechanik als eine vollständige Beschreibung eines realen Sachverhaltes auf, so ist die Hypothese einer schwer annehm‐baren Fernwirkung impliziert. Fasst man die Ψ‐Funktion aber als eine unvollständige Beschreibung eines realen Sachverhaltes auf, so ist es schwer zu glauben, dass für eine unvollständige Beschreibung strenge Gesetze für die zeitliche Abhängigkeit gelten.‐ A. E.
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  33.  9
    Relativity.Albert Einstein - 1920 - London,: Routledge. Edited by Robert W. Lawson.
    _Time_'s 'Man of the Century', Albert Einstein is the unquestioned founder of modern physics. His theory of relativity is the most important scientific idea of the modern era. In this short book Einstein explains, using the minimum of mathematical terms, the basic ideas and principles of the theory which has shaped the world we live in today. Unsurpassed by any subsequent books on relativity, this remains the most popular and useful exposition of Einstein's immense contribution to human (...)
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  34.  21
    Relativity.Albert Einstein - 1920 - London,: Methuen. Edited by Robert W. Lawson.
    PHYSICAL MEANING OF GEOMETRICAL PROPOSITIONS IN your schooldays most of you who read this book made acquaintance with the noble building of Euclid's ...
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  35.  18
    Relativity: The Special and General Theory.Albert Einstein - 1952 - Routledge.
    Relativity is the most important scientific idea of the twentieth century. Albert Einstein is the unquestioned founder of modern physics. His Special and General theories of Relativity introduced the idea to the world. In this classic short book he explains clearly, using the minimum amount of mathematical terms, the basic ideas and principles of his theory of Relativity. Unsurpassed by any subsequent books on Relativity, this remains the most popular and useful exposition of Einstein's immense contribution to human (...)
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  36.  7
    Geometrie und Erfahrung.Albert Einstein - 1921 - Akademie der Wissenschaften, in Kommission Bei W. De Gruyter.
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  37. Autobiographical Notes.Max Black, Albert Einstein & Paul Arthur Schilpp - 1949 - Journal of Symbolic Logic 15 (2):157.
  38. Geometry and experience (1921).Albert Einstein - 2005 - Scientiae Studia 3 (4):665-675.
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  39.  6
    Nauka i społeczeństwo w stulecie szczególnej teorii względności Alberta Einsteina (1905-2005).Albert Einstein & Bożena Płonka-Syroka (eds.) - 2006 - Wrocław: "DiG".
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  40.  60
    The World as I See it.Albert Einstein - 1951 - Philosophy and Phenomenological Research 11 (3):447-448.
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  41.  17
    Sidelights on Relativity.A. Einstein, G. B. Jeffery & W. Perrett - 1925 - Philosophical Review 34 (2):204-205.
  42. Out of My Later Years.Albert Einstein - 1952 - British Journal for the Philosophy of Science 3 (9):92-93.
     
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  43.  64
    Relativity: the special and the general theory; a popular exposition.Albert Einstein - 1961 - New York,: Crown Publishers.
    Two leaves of typescript and 7 leaves of galley proofs with corrections in Einstein's hand for the article "Relativity" in American Peoples Encyclopedia.
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  44. Geometrie und Erfahrung, Berlin 1921.Einstein - 1922 - Kwartalnik Filozoficzny 1 (1):149-150.
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  45. Joachim Stolz.Whitehead'S. Critique Of Einstein - 1994 - In Dag Prawitz & Dag Westerståhl (eds.), Logic and Philosophy of Science in Uppsala. Kluwer Academic Publishers. pp. 325.
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  46. L'éther et la théorie de la relativité. La Géométrie l'expérience.Albert Einstein & Solovine - 1956 - Revue Philosophique de la France Et de l'Etranger 146:405-405.
     
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  47. I NTRODUCCIÓN M ucha gente tiende a pensar que con la teoría de la relatividad de Einstein, el concepto de tiempo absoluto de Isaac Newton quedó totalmente refutado. 1 En este trabajo nos proponemos explorar la idea de que, al.Einstein Y. La Noción De Newton - 2001 - Signos Filosóficos 5:65-81.
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  48. Physics and Reality.A. Einstein - 1936 - \em J. Franklin Institute 221:349-382.
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  49.  8
    Ideas and Opinions.Albert Einstein, Carl Seelig & Sonja Bargmann - 1985 - Three Rivers Press.
    From one of the world's most important and enduring minds, Albert Einstein's ideas, thoughts, and philosophies on the world and its people. Copyright © Libri GmbH. All rights reserved.
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  50. The Evolution of Physics: The Growth of Ideas from the Early Concepts to Relativity and Quanta.Albert Einstein & Leopold Infeld - 1939 - Philosophy 14 (54):242-242.
     
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