Philosophy of Physical Science

Edited by Hans Halvorson (Princeton University, University of Copenhagen)
Assistant editors: Joshua Luczak, Thomas De De Saegher
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  1. Univalence and Ontic Structuralism.Lu Chen - 2024 - Foundations of Physics 54 (3).
    The persistent challenge of formulating ontic structuralism in a rigorous manner, which prioritizes structures over the entities they contain, calls for a transformation of traditional logical frameworks. I argue that Univalent Foundations (UF), which feature the axiom that all isomorphic structures are identical, offer such a foundation and are more attractive than other proposed structuralist frameworks. Furthermore, I delve into the significance in the case of the hole argument and, very briefly, the nature of symmetries.
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  2. A Subjective Bayesian Response to Winsberg’s use of the 'Adequacy for Purpose ' model criterion.John Lepp - manuscript
    ABSTRACT: It will be argued that Eric Winsberg has created a problem where nobody is in the position to rationally support the Anthropogenic Climate Change hypothesis, since he demands the normal lay public defer to experts but, from Winsberg’s philosophical commitments, experts are precluded from having the ability to rationally conclude that a hypothesis is superior to an alternative. Winsberg’s difficulties can be resolved with a little help from Bayesian Confirmation Theory. A Bayesian analysis will be provided which allows for (...)
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  3. Relational Quantum Mechanics and Intuitionistic Mathematics.Charles B. Crane - 2024 - Foundations of Physics 54 (3):1-12.
    We propose a model of physics that blends Rovelli’s relational quantum mechanics (RQM) interpretation with the language of finite information quantities (FIQs), defined by Gisin and Del Santo in the spirit of intuitionistic mathematics. We discuss deficiencies of using real numbers to model physical systems in general, and particularly under the RQM interpretation. With this motivation for an alternative mathematical language, we propose the use of FIQs to model the world under the RQM interpretation, wherein we view the propensities that (...)
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  4. On Fermi’s Resolution of the “4/3 Problem” in the Classical Theory of the Electron.Donato Bini, Andrea Geralico, Robert T. Jantzen & Remo Ruffini - 2024 - Foundations of Physics 54 (3):1-44.
    We discuss the solution proposed by Fermi to the so called “4/3 problem” in the classical theory of the electron, a problem which puzzled the physics community for many decades before and after his contribution. Unfortunately his early resolution of the problem in 1922–1923 published in three versions in Italian and German journals (after three preliminary articles on the topic) went largely unnoticed. Even more recent texts devoted to classical electron theory still do not present his argument or acknowledge the (...)
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  5. PBR, Nonreality and Entangled Measurement.Gábor Hofer-Szabó - 2024 - Foundations of Physics 54 (3):1-7.
    In a recent paper, Cabbolet argues that the PBR theorem is nonreal since in the ensemble interpretation of quantum mechanics the entangled measurement used in the derivation of the PBR theorem is nonexisting. However, Cabbolet (1) does not provide any argument for the nonexistence of entangled measurements beyond the incompatibility of the existence of entangled measurements and the existence of $$\psi$$ -epistemic models which we already know from the PBR theorem; and (2) he does not show why it is more (...)
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  6. Phenomenology, Perspectivalism and (Quantum) Physics.Steven French - 2024 - Foundations of Physics 54 (3):1-18.
    It has been claimed that Massimi’s recent perspectival approach to science sits in tension with a realist stance. I shall argue that this tension can be defused in the quantum context by recasting Massimi’s perspectivalism within a phenomenological framework. I shall begin by indicating how the different but complementary forms of the former are manifested in the distinction between certain so-called ‘-epistemic’ and ‘-ontic’ understandings of quantum mechanics, namely QBism and Relational Quantum Mechanics, respectively. A brief consideration of Dieks’ perspectivism (...)
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  7. Foundational Issues in Group Field Theory.Álvaro Mozota Frauca - 2024 - Foundations of Physics 54 (3):1-24.
    In this paper I offer an introduction to group field theory (GFT) and to some of the issues affecting the foundations of this approach to quantum gravity. I first introduce covariant GFT as the theory that one obtains by interpreting the amplitudes of certain spin foam models as Feynman amplitudes in a perturbative expansion. However, I argue that it is unclear that this definition of GFTs amounts to something beyond a computational rule for finding these transition amplitudes and that GFT (...)
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  8. Quantum Mechanics Based on an Extended Least Action Principle and Information Metrics of Vacuum Fluctuations.Jianhao M. Yang - 2024 - Foundations of Physics 54 (3):1-31.
    We show that the formulations of non-relativistic quantum mechanics can be derived from an extended least action principle. The principle can be considered as an extension of the least action principle from classical mechanics by factoring in two assumptions. First, the Planck constant defines the minimal amount of action a physical system needs to exhibit during its dynamics in order to be observable. Second, there is constant vacuum fluctuation along a classical trajectory. A novel method is introduced to define the (...)
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  9. Beyond the Quantum Membrane Paradigm: A Philosophical Analysis of the Structure of Black Holes in Full QG.Enrico Cinti & Marco Sanchioni - 2024 - Foundations of Physics 54 (3):1-23.
    This paper presents a philosophical analysis of the structure of black holes, focusing on the event horizon and its fundamental status. While black holes have been at the centre of countless paradoxes arising from the attempt to merge quantum mechanics and general relativity, recent experimental discoveries have emphasised their importance as objects for the development of Quantum Gravity. In particular, the statistical mechanical underpinning of black hole thermodynamics has been a central research topic. The Quantum Membrane Paradigm, proposed by Wallace (...)
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  10. Simulating Nelsonian Quantum Field Theory.Andrea Carosso - 2024 - Foundations of Physics 54 (3):1-31.
    We describe the picture of physical processes suggested by Edward Nelson’s stochastic mechanics when generalized to quantum field theory regularized on a lattice, after an introductory review of his theory applied to the hydrogen atom. By performing numerical simulations of the relevant stochastic processes, we observe that Nelson’s theory provides a means of generating typical field configurations for any given quantum state. In particular, an intuitive picture is given of the field “beable”—to use a phrase of John Stewart Bell—corresponding to (...)
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  11. Relational Quantum Mechanics: Ozawa’s Intersubjectivity Theorem as Justification of the Postulate on Internally Consistent Descriptions.Andrei Khrennikov - 2024 - Foundations of Physics 54 (3):1-12.
    The Ozawa’s intersubjectivity theorem (OIT) proved within quantum measurement theory supports the new postulate of relational quantum mechanics (RQM), the postulate on internally consistent descriptions. But from OIT viewpoint postulate’s formulation should be completed by the assumption of probability reproducibility. We remark that this postulate was proposed only recently to resolve the problem of intersubjectivity of information in RQM. In contrast to RQM for which OIT is a supporting theoretical statement, QBism is challenged by OIT.
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  12. The Thermodynamic Cost of Choosing.Carlo Rovelli - 2024 - Foundations of Physics 54 (3):1-9.
    Choice can be defined in thermodynamical terms, and shown to have a thermodynamic cost: choosing between a binary alternative at temperature T dissipates an energy $$E\ge kT\ln 2$$.
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  13. On resultant motion in discrete space.Sydney Ernest Grimm - manuscript
    The explanation of the existence of quantum transfer in vacuum space around celestial bodies under influence of gravitational vectors./.
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  14. Minkowski Space from Quantum Mechanics.László B. Szabados - 2024 - Foundations of Physics 54 (3):1-48.
    Penrose’s Spin Geometry Theorem is extended further, from SU(2) and E(3) (Euclidean) to E(1, 3) (Poincaré) invariant elementary quantum mechanical systems. The Lorentzian spatial distance between any two non-parallel timelike straight lines of Minkowski space, considered to be the centre-of-mass world lines of E(1, 3)-invariant elementary classical mechanical systems with positive rest mass, is expressed in terms of E(1, 3)-invariant basic observables, viz. the 4-momentum and the angular momentum of the systems. An analogous expression for E(1, 3)-invariant elementary quantum mechanical (...)
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  15. 分析的技藝——林正弘教授七十祝壽論文集.Chris Fraser (ed.) - 2009 - Taipei:
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  16. Eliminativism and the QCD $$\theta _{\text {YM}}$$-Term: What Gauge Transformations Cannot Do.Henrique Gomes & Aldo Riello - 2024 - Foundations of Physics 54 (2):1-30.
    The eliminative view of gauge degrees of freedom—the view that they arise solely from descriptive redundancy and are therefore eliminable from the theory—is a lively topic of debate in the philosophy of physics. Recent work attempts to leverage properties of the QCD $$\theta _{\text {YM}}$$ θ YM -term to provide a novel argument against the eliminative view. The argument is based on the claim that the QCD $$\theta _{\text {YM}}$$ θ YM -term changes under “large” gauge transformations. Here we review (...)
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  17. Spatio-temporally Graded Causality: A Model.Bartosz Jura - 2024 - Foundations of Physics 54 (2):1-12.
    In this paper we consider a claim that in the natural world there is no fact of the matter about the spatio-temporal separation of events. In order to make sense of such a notion and construct useful models of the world, it is proposed to use elements of a non-classical logic. Specifically, we focus here on causality, as a concept tightly related with the assumption of there being distinct, separate events, proposing a model according to which it can be considered (...)
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  18. Timelines: Short Essays and Verse in the Philosophy of Time.Edward A. Francisco - 2024 - Morrisville, North Carolina: Lulu Press.
    Timelines is an inquiry into the nature of time, both as an apparent feature of the external physical world and as a fundamental feature of our experience of ourselves in the world. The principal argument of Timelines is that our coventional ideas about time are largely mistaken and that what we think of as independent physical time is actually our calibration of a certain relation between events. Namely, the relation between time-keeping events and the causal sequential differences of physical processes (...)
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  19. A Stochastic Model of Mathematics and Science.David H. Wolpert & David B. Kinney - 2024 - Foundations of Physics 54 (2):1-67.
    We introduce a framework that can be used to model both mathematics and human reasoning about mathematics. This framework involves stochastic mathematical systems (SMSs), which are stochastic processes that generate pairs of questions and associated answers (with no explicit referents). We use the SMS framework to define normative conditions for mathematical reasoning, by defining a “calibration” relation between a pair of SMSs. The first SMS is the human reasoner, and the second is an “oracle” SMS that can be interpreted as (...)
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  20. Causation in Physics.Christopher Gregory Weaver - forthcoming - Cambridge University Press.
    Causation in Physics demonstrates the importance of causation in the physical world. It details why causal mastery of natural phenomena is an important part of the effective strategies of experimental physicists. It develops three novel arguments for the viewpoint that causation is indispensable to the ontology of some of our best physical theories. All three arguments make much of the successes of experimental physics.
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  21. Robustness Analysis and Hubble Tension.Marco Forgione - manuscript
    The paper presents and discusses the Hubble tension with respect to recent results in cosmology. I shall argue that the measurements from the James Webb Space Telescope and TRGB stars calibrations allow us to infer that the estimates of H0 with late universe methods are robust. Building on from robustness analysis, I conclude that the resolution of the tension cannot be expected to come from new systematics, but rather from new physics.
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  22. Geschichte der physik.Adolf Kistner - 1906 - Leipzig,: G. J. Göschen.
    This work has been selected by scholars as being culturally important, and is part of the knowledge base of civilization as we know it. This work was reproduced from the original artifact, and remains as true to the original work as possible. Therefore, you will see the original copyright references, library stamps (as most of these works have been housed in our most important libraries around the world), and other notations in the work. This work is in the public domain (...)
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  23. Shintai butsurigaku kyōkasho.Tei Noda - 1909 - Tōkyō: Kaiseikan.
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  24. Die prinzipien der mechanischen naturlehre.Wilhelm Max Wundt - 1910 - Stuttgart,: F. Enke.
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  25. Die Physik der bewegten materie und die relativitätstheorie.Max Bernhard Weinstein - 1913 - Leipzig,: J.A. Barth.
    1. t. Optische und elektromagnetische erscheinungen unter dem einfluss von bewegungen.--2. t. Die weitere relativitätstheorie.
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  26. Raum und zeit im lichte der neueren physik.Hans Witte - 1914 - Braunschweig,: F. Viewig & sohn.
    Nachdruck der Originalausgabe aus dem Jahr 1914.
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  27. Das Relativitätsprinzip.Alexander von Brill - 1914 - Berlin,: B.G. Teubner.
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  28. Einstein.Leonard Brown Buchanan - 1920 - [Boston,: Pinkham press.
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  29. Die relativitätstheorie Einsteins und ihre physikalischen grundlagen gemeinverständlich dargestellt von Max Born.Max Born - 1920 - Berlin,: J. Springer.
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  30. Raum.Hermann Weyl - 1921 - Berlin,: J. Springer.
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  31. La gravifique einsteinienne.Théophile de Donder - 1921 - Paris,: Gauthier-Villars.
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  32. Einstein's theories of relativity and gravitation.James Malcolm Bird - 1921 - New York,: Scientific American Publishing Co.. Edited by Albert Einstein.
    This work has been selected by scholars as being culturally important, and is part of the knowledge base of civilization as we know it. This work is in the "public domain in the United States of America, and possibly other nations. Within the United States, you may freely copy and distribute this work, as no entity (individual or corporate) has a copyright on the body of the work. Scholars believe, and we concur, that this work is important enough to be (...)
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  33. Introduction géométrique à l'étude de la relativité.Henri Marais - 1923 - Paris,: Gauthier-Villars.
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  34. Die Prüfungsmöglichkeiten der Einsteinschen Relativitätstheorie, allgemein Verständliche und zusammenfassende darstellung.Heinrich Kleinert - 1923 - Bern und Leipzig,: E. Bircher.
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  35. La teoria de la relatividad y su importancia con respecto al progreso del espiritu humano puesto al alcance de todas las inteligencias.Alfredo Wulf - 1924 - Tacubaya, D.F. Mexico,: Imprenta de la Direccion de estudios geograficos y climatologicos.
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  36. Hyperspace, métapsychique, relativité.Albert Vilar - 1925 - Paris,: Jouve et cie.
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  37. Les erreurs philosophiques de M. Einstein.Gabriel Joly - 1925 - Paris,: "Éditions Spes".
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  38. The well posed problem.Edwin T. Jaynes - 1973 - Foundations of Physics 4 (3):477–92.
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  39. The ambiguity of random choices: Probability paradoxes in some physical processes.Lorenzo Basano & Pasquale Ottonello - 1996 - American Journal of Physics 64 (1):34-39.
    The ambiguity of random choices: Probability paradoxes in some physical processes.
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Complex Systems
  1. Complexity and Particularity: An Argument for the Impossibility of Artificial Intelligence.Emanuele Martinelli - 2024 - Cosmos+Taxis 12 (5+6):42-57.
    Landgrebe and Smith (2022) have recently offered an important mathematical argument against the possibility of Artificial General Intelligence (AGI): human intelligence is a complex system; complex systems have some properties that cannot be modelled mathematically; hence we have no viable way to build an AI that would be able to emulate human intelligence. The issue of complexity is thus at the heart of the Landgrebe and Smith approach, and they tackle this issue by postulating a set of conditions, derived from (...)
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  2. Complex Systems: From Biology to Computation.Paul-Michel Agapow (ed.) - 1993 - Ios Press.
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  3. Developing, representing and using theories of change for interventions in complex systems.Patricia Rogers - 2024 - In Andrew Koleros, Marie-Hélène Adrien & Tony Tyrrell (eds.), Theories of change in reality: strengths, limitations and future directions. New York, NY: Routledge.
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Chaos
  1. Is Intelligence Non-Computational Dynamical Coupling?Jonathan Simon - 2024 - Cosmos+Taxis 12 (5+6):23-36.
    Is the brain really a computer? In particular, is our intelligence a computational achievement: is it because our brains are computers that we get on in the world as well as we do? In this paper I will evaluate an ambitious new argument to the contrary, developed in Landgrebe and Smith (2021a, 2022). Landgrebe and Smith begin with the fact that many dynamical systems in the world are difficult or impossible to model accurately (inter alia, because it is intractable to (...)
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Complexity
  1. Intelligence. And what computers still can’t do.Jobst Landgrebe & Barry Smith - 2024 - Cosmos+Taxis 12 (5+6):104-114.
    We comment on the collection of papers inspired by our book Why Machines Will Never Rule the World published in volume 12 (5+6) of the journal Cosmos+Taxis. We summarize the arguments made by the contributors about what we say in the book, and then show where we disagree.
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Nonlinear Dynamics
  1. Laying the Foundations for a Theory of Consciousness: The Significance of Critical Brain Dynamics for the Formation of Conscious States.Joachim Keppler - 2024 - Frontiers in Human Neuroscience 18:1379191.
    Empirical evidence indicates that conscious states, distinguished by the presence of phenomenal qualities, are closely linked to synchronized neural activity patterns whose dynamical characteristics can be attributed to self-organized criticality and phase transitions. These findings imply that insight into the mechanism by which the brain controls phase transitions will provide a deeper understanding of the fundamental mechanism by which the brain manages to transcend the threshold of consciousness. This article aims to show that the initiation of phase transitions and the (...)
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Systems Theory
  1. Technik- und Wissenschaftsethik. Ein Leitfaden (2nd edition).Christoph Hubig - 1995 - Berlin: Springer.
  2. Exploring the Methodological Foundation of A Systemic Approach in Grey Systems Theory.Rafał Mierzwiak - forthcoming - Foundations of Science:1-17.
    The article focusses on grey system theory and its methodological foundations. Key topics include: axiomatisation of the concept of grey, comparison of grey systems theory with fuzzy logic and probabilistic approaches, and methodological development of the systems approach in grey data modelling. The article discusses in detail the challenges of defining grey space, grey functions, and their applications in solving the methodological problems of grey systems theory. The differences between grey systems theory and other analytical methodologies are highlighted, paying attention (...)
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Philosophy of Chemistry
  1. Novelty and Innovation, the Joy of Experimentation, and the “Investigation of Things” (gewu) in Pre-modern China: The Example of Gunpowder.David Bartosch, Aleksandar Kondinski & Bei Peng - 2024 - International Communication of Chinese Culture 11 (1):23–40.
    In this transdisciplinary investigation, we focus on the invention and development of gunpowder. We aim to answer the questions regarding (1) the inspiration behind the invention, including historical, mythological, and intellectual backgrounds, (2) how it came about in concreto, and (3) its impact on the history of science in China. We argue that the invention has to be viewed in a broader context and that various factors come into play with regard to the above questions. The discussion starts by examining (...)
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  2. Research status of the periodic table: a bibliometric analysis.Kamna Sharma, Deepak Kumar Das & Saibal Ray - forthcoming - Foundations of Chemistry:1-14.
    In this paper, we present a bibliometric analysis of the Periodic Table. We have conducted a comprehensive analysis of Scopus based database using the keyword “Mendeleev Periodic Table". Our findings suggest that the Periodic Table is an influential topic in the field of Inorganic as well as Organic Chemistry. Areas for future research could include on expanding our analysis to include other bibliometric indicators to gain a more comprehensive understanding of the impact of the Periodic Table in the chemistry-based scientific (...)
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  3. Deciphering the physical meaning of Gibbs’s maximum work equation.Robert T. Hanlon - 2024 - Foundations of Chemistry 26 (1):179-189.
    J. Willard Gibbs derived the following equation to quantify the maximum work possible for a chemical reaction$${\text{Maximum work }} = \, - \Delta {\text{G}}_{{{\text{rxn}}}} = \, - \left( {\Delta {\text{H}}_{{{\text{rxn}}}} {-}{\text{ T}}\Delta {\text{S}}_{{{\text{rxn}}}} } \right) {\text{ constant T}},{\text{P}}$$ Maximum work = - Δ G rxn = - Δ H rxn - T Δ S rxn constant T, P ∆Hrxn is the enthalpy change of reaction as measured in a reaction calorimeter and ∆Grxn the change in Gibbs energy as measured, if (...)
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