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Foundations of Physics

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  1. The Collapse of Supertasks.Gustavo E. Romero - 2014 - Foundations of Science 19 (2):209-216.
    A supertask consists in the performance of an infinite number of actions in a finite time. I show that any attempt to carry out a supertask will produce a divergence of the curvature of spacetime, resulting in the formation of a black hole. I maintain that supertaks, contrarily to a popular view among philosophers, are physically impossible. Supertasks, literally, collapse under their own weight.
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  • Cosmological Black Holes and the Direction of Time.Gustavo E. Romero, Federico G. López Armengol & Daniela Pérez - 2018 - Foundations of Science 23 (2):415-426.
    Macroscopic irreversible processes emerge from fundamental physical laws of reversible character. The source of the local irreversibility seems to be not in the laws themselves but in the initial and boundary conditions of the equations that represent the laws. In this work we propose that the screening of currents by black hole event horizons determines, locally, a preferred direction for the flux of electromagnetic energy. We study the growth of black hole event horizons due to the cosmological expansion and accretion (...)
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  • On the Ontology of Spacetime: Substantivalism, Relationism, Eternalism, and Emergence.Gustavo E. Romero - 2017 - Foundations of Science 22 (1):141-159.
    I present a discussion of some issues in the ontology of spacetime. After a characterisation of the controversies among relationists, substantivalists, eternalists, and presentists, I offer a new argument for rejecting presentism, the doctrine that only present objects exist. Then, I outline and defend a form of spacetime realism that I call event substantivalism. I propose an ontological theory for the emergence of spacetime from more basic entities. Finally, I argue that a relational theory of pre-geometric entities can give rise (...)
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  • Mario Bunge on Gravitational Waves and the Reality of Spacetime.Gustavo E. Romero - 2018 - Foundations of Science 23 (2):405-409.
    I discuss the recent claims made by Mario Bunge on the philosophical implications of the discovery of gravitational waves. I think that Bunge is right when he points out that the detection implies the materiality of spacetime, but I reject his identification of spacetime with the gravitational field. I show that Bunge’s analysis of the spacetime inside a hollow sphere is defective, but this in no way affects his main claim.
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  • Parmenides Reloaded.Gustavo E. Romero - 2012 - Foundations of Science 17 (3):291-299.
    I argue for a four dimensional, non-dynamical view of space-time, where becoming is not an intrinsic property of reality. This view has many features in common with the Parmenidean conception of the universe. I discuss some recent objections to this position and I offer a comparison of the Parmenidean space-time with an interpretation of Heraclitus’ thought that presents no major antagonism.
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  • Sufficient Reason and Reason Enough.Gustavo E. Romero - 2016 - Foundations of Science 21 (3):455-460.
    I offer an analysis of the Principle of Sufficient Reason and its relevancy for the scientific endeavour. I submit that the world is not, and cannot be, rational—only some brained beings are. The Principle of Sufficient Reason is not a necessary truth nor a physical law. It is just a guiding metanomological hypothesis justified a posteriori by its success in helping us to unveil the mechanisms that operate in Nature.
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  • Systemic materialism.Gustavo E. Romero - 2022 - In Gustavo E. Romero, Javier Pérez-Jara & Lino Camprubí (eds.), Contemporary Materialism: Its Ontology and Epistemology. Springer. pp. 79-107.
    I present a condensed exposé of systemic materialism, a synthesis of materialism and systemism originally proposed by Mario Bunge. Matter is identified with mutability of propertied particulars, and a concrete or material system is defined as an object with composition, structure, mechanism, and environment. I review different aspects of this ontology, and discuss some of its implications for epistemology, ethics, and aesthetics. I also try to identify some problems of this view and offer some ways to overcome the difficulties. I (...)
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  • Quantum mechanics based on position.Ralph H. Young - 1980 - Foundations of Physics 10 (1-2):33-56.
    The only observational quantity which quantum mechanics needs to address islocation. The typical primitive observation on a microsystem (e.g., photon) isdetection at alocation (e.g., by a photomultiplier “looking at” a grating). To analyze an experiment, (a) form a conceptual ensemble of replicas of it, (b) assign a wave function (in “position representation”) to its initial condition, (c) evolve the wave function by the Schrödinger equation (known, once and for all, as a function of the system's composition), (d) compute the probability (...)
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  • Probability as typicality.Sérgio B. Volchan - 2007 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 38 (4):801-814.
  • Psycho-neural Identity as the Basis for Empirical Research and Theorization in Psychology: An Interview with Mario A. Bunge.Javier Virues-Ortega, Camilo Hurtado-Parrado, Toby L. Martin & Flávia Julio - 2012 - Science & Education 21 (10):1527-1534.
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  • Vier gesprekspunten voor een nieuwe dialoog tussen natuurwetenschappers en theologen.Guido Verstraeten - 1993 - Bijdragen 54 (2):177-191.
  • Revised Robertson's test theory of special relativity: Space-time structure and dynamics. [REVIEW]José G. Vargas & Douglas G. Torr - 1986 - Foundations of Physics 16 (11):1089-1126.
    The experimental testing of the Lorentz transformations is based on a family of sets of coordinate transformations that do not comply in general with the principle of equivalence of the inertial frames. The Lorentz and Galilean sets of transformations are the only member sets of the family that satisfy this principle. In the neighborhood of regular points of space-time, all members in the family are assumed to comply with local homogeneity of space-time and isotropy of space in at least one (...)
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  • Two studies concerning the Michelson-Morley experiment.Håkan Törnebohm - 1970 - Foundations of Physics 1 (1):47-56.
    In the first of these two studies it is argued that the discrepancy between the predicted and actual outcome of the Michelson-Morley experiment is due to the use of Newton's velocity addition theorem in conjunction with an electromagnetic theory of light. The ether hypothesis is not directly affected at all. The second study is a case study of the removal of a clash in physics generated from the outcome of an experiment. The clash due to the Michelson-Morley experiment gave rise (...)
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  • Durations and distances in time.Hakan Törnebohm - 1971 - Theoria 37 (3):209-226.
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  • Logics for quantum mechanics.Martin Strauss - 1973 - Foundations of Physics 3 (2):265-276.
    The two concepts of probability used in physics are analyzed from the formal and the material points of view. The standard theory corresponds toprob 1 (probability of the coexistence of two properties). A general logicomathematical theory ofprob 2 (probability of transition between states) is presented in axiomatic form. The underlying state algebra is neither Boolean nor Birkhoff-von Neumann but partial Boolean. In the Boolean subalgebras,prob 1 theory holds. The theory presented contains the logicomathematical foundations of quantum mechanics and, as degenerate (...)
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  • Temporal indexicals.Quentin Smith - 1990 - Erkenntnis 32 (1):5--25.
  • Propensity theories of probability unscathed: A reply to white.Tom Settle - 1972 - British Journal for the Philosophy of Science 23 (4):331-335.
  • Physical axiomatics: Freudenthal vs. Bunge. [REVIEW]David Salt - 1971 - Foundations of Physics 1 (4):307-313.
    The following remarks are intended to show that some of Freudenthal's recent criticisms of Bunge'sFoundations of Physics are wide of the mark. Freudenthal sets his criticisms of detail in a framework of some general considerations of the role played by axiomatic theories in the foundations of physics. In particular, he considers the notion of the objects of an axiomatic theory, the relation of an axiomatic theory to reality, and the notion of the transformation group of a theory. These topics are (...)
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  • Present Time.Gustavo E. Romero - 2015 - Foundations of Science 20 (2):135-145.
    The idea of a moving present or ‘now’ seems to form part of our most basic beliefs about reality. Such a present, however, is not reflected in any of our theories of the physical world. I show in this article that presentism, the doctrine that only what is present exists, is in conflict with modern relativistic cosmology and recent advances in neurosciences. I argue for a tenseless view of time, where what we call ‘the present’ is just an emergent secondary (...)
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  • From Change to Spacetime: An Eleatic Journey.Gustavo E. Romero - 2013 - Foundations of Science 18 (1):139-148.
    I present a formal ontological theory where the basic building blocks of the world can be either things or events. In any case, the result is a Parmenidean worldview where change is not a global property. What we understand by change manifests as asymmetries in the pattern of the world-lines that constitute 4-dimensional existents. I maintain that such a view is in accord with current scientific knowledge.
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  • Adversus Singularitates: The Ontology of Space–Time Singularities.Gustavo E. Romero - 2013 - Foundations of Science 18 (2):297-306.
    I argue that there are no physical singularities in space–time. Singular space–time models do not belong to the ontology of the world, because of a simple reason: they are concepts, defective solutions of Einstein’s field equations. I discuss the actual implication of the so-called singularity theorems. In remarking the confusion and fog that emerge from the reification of singularities I hope to contribute to a better understanding of the possibilities and limits of the theory of general relativity.
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  • A Formal Ontological Theory Based on Timeless Events.Gustavo E. Romero - 2016 - Philosophia 44 (2):607-622.
    I offer a formal ontological theory where the basic building blocks of the world are timeless events. The composition of events results in processes. Spacetime emerges as the system of all events. Things are construed as bundles of processes. I maintain that such a view is in accord with General Relativity and offers interesting prospects for the foundations of classical and quantum gravity.
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  • Das Problem der Theorienbewertung.Gerard Radnitzky - 1979 - Zeitschrift Für Allgemeine Wissenschaftstheorie 10 (1):67-97.
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  • Das problem der theorienbewertung.Gerard Radnitzky - 1979 - Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 10 (1):67-97.
    O. The idea of scientific progress in contemporary philosophy of science. Explicating the concept of cognitive progress means at the same time articulating an ideal of science. A desirable ideal: explain a lot and offer certainty. 1. Working out the ideal with the "foundationalist-positivist" approach. If the question, "When is it rational to accept a theory?" is answered, "When it has sufficient inductive support," this leads to insoluble problems. Reactions to the collapse of this approach - especially relativism and theory (...)
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  • La conscience de l'observateur: de la physique théorique à la logique mathématique.Yvon Provençal - 1977 - Dialogue 16 (2):228-244.
    Cet article a pour but de faire connaître au lecture une approche théorique de la réalité physique différente de celle communément admise depuis les débuts de la science physique. On y montre d'abord comment l'approche traditionnelle traite avec une notion de l'événement physique et des étres physiques en ǵenéral qui laisse systématiquement de côté ces éléments de complexité considérés trop facilement comme superflus, mais qui appartiennent à la réalité physique et en constituent la trame. On proposera alors une nouvelle approche (...)
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  • Is there an incommensurability between superseding theories?A. Polikarov - 1993 - Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 24 (1):127 - 146.
    According to the Incommensurability Thesis (IT) superseding scientific theories (paradigms) are incommensurable. Unlike many authors we do not discuss whether there is a relationship of this kind. We take for granted that this may be the case, and see the problem in the endeavour to establish the domain of validity of the IT. The notion incommensurability (Ic) is derivative from the concepts of scientific paradigm (P) and scientific revolution (R). There are several concepts of P, as well as various conceptions (...)
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  • Is There an Incommensurability between Superseding Theories? On the Validity of the Incommensurability Thesis.A. Polikarov - 1993 - Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 24 (1):127 - 146.
    According to the Incommensurability Thesis (IT) superseding scientific theories (paradigms) are incommensurable. Unlike many authors we do not discuss whether there is a relationship of this kind. We take for granted that this may be the case, and see the problem in the endeavour to establish the domain of validity of the IT. The notion incommensurability (Ic) is derivative from the concepts of scientific paradigm (P) and scientific revolution (R). There are several concepts of P, as well as various conceptions (...)
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  • Determinism and locality in quantum mechanics.Ingemar Nordin - 1979 - Synthese 42 (1):71 - 90.
    In current philosophical debate Bell's theorem is often refered to as a proof of the impossibility of determinism in nature. It is argued here that this conclusion is wrong. The main consequence of the theorem is the non-local character of quantum theory itself and it is shown how this quality leads to a contradiction with the theory of relativity. If hidden variable theories are impossible, it is so because no empirically founded interpretation at all can be compatible with both quantum (...)
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  • Instead of Particles and Fields: A Micro Realistic Quantum "Smearon" Theory.Nicholas Maxwell - 1982 - Foundatioins of Physics 12 (6):607-631.
    A fully micro realistic, propensity version of quantum theory is proposed, according to which fundamental physical entities - neither particles nor fields - have physical characteristics which determine probabilistically how they interact with one another . The version of quantum "smearon" theory proposed here does not modify the equations of orthodox quantum theory: rather, it gives a radically new interpretation to these equations. It is argued that there are strong general reasons for preferring quantum "smearon" theory to orthodox quantum theory; (...)
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  • Mario Bunge, Systematic Philosophy and Science Education: An Introduction.Michael R. Matthews - 2012 - Science & Education 21 (10):1393-1403.
  • Mario Bunge (1919–2020): Conjoining Philosophy of Science and Scientific Philosophy.Martin Mahner - 2021 - Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 52 (1):3-23.
    The leitmotif of Mario Bunge’s work was that the philosophy of science should be informed by a comprehensive scientific philosophy, and vice versa; with both firmly rooted in realism and materialism. Now Bunge left such a big oeuvre, comprising more than 70 books and hundreds of articles, that it is impossible to review it in its entirety. In addition to biographical remarks, this obituary will therefore restrict itself to some select issues of his philosophy: his scientific metaphysics, his philosophy of (...)
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  • Is religious education compatible with science education?Martin Mahner & Mario Bunge - 1996 - Science & Education 5 (2):101-123.
  • Meeting the Discipline-Culture Framework of Physics Knowledge: A Teaching Experience in Italian Secondary School.Olivia Levrini, Eugenio Bertozzi, Marta Gagliardi, Nella Grimellini Tomasini, Barbara Pecori, Giulia Tasquier & Igal Galili - 2014 - Science & Education 23 (9):1701-1731.
  • Teaching Quantum Physics in Upper Secondary School in France.Philippe Lautesse, Adrien Vila Valls, Fabrice Ferlin, Jean-Loup Héraud & Hugues Chabot - 2015 - Science & Education 24 (7-8):937-955.
  • Quantal quandaries.H. Krips - 1974 - Australasian Journal of Philosophy 52 (2):133 – 145.
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  • Foundations of quantum theory. Part 3.H. Krips - 1976 - Foundations of Physics 6 (6):639-659.
    The traditional indeterminacy and realist interpretations for quantum theory are examined. A third interpretation is put forward, for which the Born statistical interpretation can be derived by setting up a model for the measuring process.
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  • Interrogatives, problems and scientific inquiry.Scott A. Kleiner - 1985 - Synthese 62 (3):365 - 428.
  • Erotetic logic and the structure of scientific revolution.Scott A. Kleiner - 1970 - British Journal for the Philosophy of Science 21 (2):149-165.
  • Symmetries and reflections: Scientific essays.Peter Kirschenmann - 1973 - Studies in History and Philosophy of Science Part A 4 (2):193-207.
  • A laplacean formal semantics for single-case propensities.Ronald N. Giere - 1976 - Journal of Philosophical Logic 5 (3):321 - 353.
    Even those generally skeptical of propensity interpretations of probability must now grant the following two points. First, the above single-case propensity interpretation meets recognized formal conditions for being a genuine interpretation of probability. Second, this interpretation is not logically reducible to a hypothetical relative frequency interpretation, nor is it only vacuously different from such an interpretation.The main objection to this propensity interpretation must be not that it is too vague or vacuous, but that it is metaphysically too extravagant. It asserts (...)
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  • Axiomatic basis of equilibrium classical thermodynamics.Julián Garrido Garrido - 1986 - Erkenntnis 25 (2):239 - 263.
  • Towards a Refined Depiction of Nature of Science.Igal Galili - 2019 - Science & Education 28 (3-5):503-537.
    This study considers the short list of Nature of Science features frequently published and widely known in the science education discourse. It is argued that these features were oversimplified and a refinement of the claims may enrich or sometimes reverse them. The analysis shows the need to address the range of variation in each particular aspect of NOS and to illustrate these variations with actual events from the history of science in order to adequately present the subject. Another implication of (...)
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  • What about foundations of physics.Hans Freudenthal - 1970 - Synthese 21 (1):93 - 106.
  • More about Foundations of Physics.Hans Freudenthal - 1971 - Foundations of Physics 1 (4):315-323.
    Salt's paper on my criticism of Bunge's book is discussed, and some arguments in my paper are enlarged upon in order to make them better understood.
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  • A visão "ortodoxa" de teorias: comentários para defesa assim como para crítica.Herbert Feigl - 2004 - Scientiae Studia 2 (2):265-277.
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  • Mario Bunge on Gravitational Waves and the Reality of Spacetime.Gustavo E. Romero - 2018 - Foundations of Science 23 (2):405-409.
    I discuss the recent claims made by Mario Bunge on the philosophical implications of the discovery of gravitational waves. I think that Bunge is right when he points out that the detection implies the materiality of spacetime, but I reject his identification of spacetime with the gravitational field. I show that Bunge’s analysis of the spacetime inside a hollow sphere is defective, but this in no way affects his main claim.
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  • Cosmological Black Holes and the Direction of Time.Gustavo E. Romero, Daniela Pérez & Federico G. López Armengol - 2018 - Foundations of Science 23 (2):415-426.
    Macroscopic irreversible processes emerge from fundamental physical laws of reversible character. The source of the local irreversibility seems to be not in the laws themselves but in the initial and boundary conditions of the equations that represent the laws. In this work we propose that the screening of currents by black hole event horizons determines, locally, a preferred direction for the flux of electromagnetic energy. We study the growth of black hole event horizons due to the cosmological expansion and accretion (...)
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  • Book review. [REVIEW]Timothy E. Eastman & Evan Fales - 1984 - Foundations of Physics 14 (1):89-99.
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  • The wave properties of matter and the zeropoint radiation field.L. de la Peña & A. M. Cetto - 1994 - Foundations of Physics 24 (5):753-781.
    The origin of the wave properties of matter is discussed from the point of view of stochastic electrodynamics. A nonrelativistic model of a charged particle with an effective structure embedded in the random zeropoint radiation field reveals that the field induces a high-frequency vibration on the particle; internal consistency of the theory fixes the frequency of this jittering at mc2/ħ. The particle is therefore assumed to interact intensely with stationary zeropoint waves of this frequency as seen from its proper frame (...)
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  • Mario Bunge’s Scientific Realism.Alberto Cordero - 2012 - Science & Education 21 (10):1419-1435.
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