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  1. An introduction to the philosophy of time and space.Bas C. Van Fraassen - 1970 - New York: Columbia University Press.
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  • Philosophie der Raum-Zeit-Lehre.Hans Reichenbach - 1928 - Berlin und Leipzig,: De Gruyter.
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  • Special relativity without one-way velocity assumptions: Part I.John A. Winnie - 1970 - Philosophy of Science 37 (1):81-99.
    The Reichenbach-Grunbaum thesis of the conventionality of simultaneity is clarified and defended by developing the consequences of the Special Theory when assumptions are not made concerning the one-way speed of light. It is first shown that the conventionality of simultaneity leads immediately to the conventionality of all relative speeds. From this result, the general-length-contraction and time-dilation relations are then derived. Next, the place of time-dilation and length-contraction effects within the Special Theory is examined in the light of the conventionality thesis. (...)
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  • Special relativity without one-way velocity assumptions: Part II.John A. Winnie - 1970 - Philosophy of Science 37 (2):223-238.
    The Reichenbach-Grunbaum thesis of the conventionality of simultaneity is clarified and defended by developing the consequences of the Special Theory when assumptions are not made concerning the one-way speed of light. It is first shown that the conventionality of simultaneity leads immediately to the conventionality of all relative speeds. From this result, the general-length-contraction and time-dilation relations are then derived. Next, the place of time-dilation and length-contraction effects within the Special Theory is examined in the light of the conventionality thesis. (...)
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  • The Geometry of Conventionality.James Owen Weatherall & John Byron Manchak - 2014 - Philosophy of Science 81 (2):233-247.
    There is a venerable position in the philosophy of space and time that holds that the geometry of spacetime is conventional, provided one is willing to postulate a “universal force field.” Here we ask a more focused question, inspired by this literature: in the context of our best classical theories of space and time, if one understands “force” in the standard way, can one accommodate different geometries by postulating a new force field? We argue that the answer depends on one’s (...)
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  • Part 1: Theoretical equivalence in physics.James Owen Weatherall - 2019 - Philosophy Compass 14 (5):e12592.
    I review the philosophical literature on the question of when two physical theories are equivalent. This includes a discussion of empirical equivalence, which is often taken to be necessary, and sometimes taken to be sufficient, for theoretical equivalence; and “interpretational” equivalence, which is the idea that two theories are equivalent just in case they have the same interpretation. It also includes a discussion of several formal notions of equivalence that have been considered in the recent philosophical literature, including (generalized) definitional (...)
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  • Part 2: Theoretical equivalence in physics.James Owen Weatherall - 2019 - Philosophy Compass 14 (5):e12591.
    I review the philosophical literature on the question of when two physical theories are equivalent. This includes a discussion of empirical equivalence, which is often taken to be necessary, and sometimes taken to be sufficient, for theoretical equivalence; and “interpretational” equivalence, which is the idea that two theories are equivalent just in case they have the same interpretation. It also includes a discussion of several formal notions of equivalence that have been considered in the recent philosophical literature, including (generalized) definitional (...)
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  • Making Time: A Study in the Epistemology of Measurement.E. Tal - 2014 - British Journal for the Philosophy of Science (1):axu037.
    This article develops a model-based account of the standardization of physical measurement, taking the contemporary standardization of time as its central case-study. To standardize the measurement of a quantity, I argue, is to legislate the mode of application of a quantity-concept to a collection of exemplary artefacts. Legislation involves an iterative exchange between top-down adjustments to theoretical and statistical models regulating the application of a concept, and bottom-up adjustments to material artefacts in light of remaining gaps. The model-based account clarifies (...)
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  • Making Time: A Study in the Epistemology of Measurement.Eran Tal - 2016 - British Journal for the Philosophy of Science 67 (1):297-335.
    This article develops a model-based account of the standardization of physical measurement, taking the contemporary standardization of time as its central case study. To standardize the measurement of a quantity, I argue, is to legislate the mode of application of a quantity concept to a collection of exemplary artefacts. Legislation involves an iterative exchange between top-down adjustments to theoretical and statistical models regulating the application of a concept, and bottom-up adjustments to material artefacts in light of remaining gaps. The model-based (...)
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  • Regularity Relationalism and the Constructivist Project.Syman Stevens - 2017 - British Journal for the Philosophy of Science:axx037.
    ABSTRACT It has recently been argued that Harvey Brown and Oliver Pooley’s ‘dynamical approach’ to special relativity should be understood as what might be called an ontologically and ideologically relationalist approach to Minkowski geometry, according to which Minkowski geometrical structure supervenes upon the symmetries of the best-systems dynamical laws for a material world with primitive topological or differentiable structure. Fleshing out the details of some such primitive structure, and a conception of laws according to which Minkowski geometry could so supervene, (...)
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  • La réception de Hugo Dingler par l’École d’Erlangen.Oliver Schlaudt - 2014 - Philosophia Scientiae 18:141-159.
    Nous retraçons la réception de Dingler et les transformations qu’a vues son approche dans l’École d’Erlangen autour de Paul Lorenzen où l’on a cherché à faire ressortir et à développer la partie défendable du pragmatisme de Dingler. Le programme « purifié » de ce « constructivisme méthodique » consiste à reconstruire les connaissances scientifiques à partir du savoir-faire (technique et linguistique) sur lequel repose la construction des instruments de mesure.
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  • La réception de Hugo Dingler par l’École d’Erlangen.Oliver Schlaudt - 2014 - Philosophia Scientiae 18:141-159.
    Nous retraçons la réception de Dingler et les transformations qu’a vues son approche dans l’École d’Erlangen autour de Paul Lorenzen où l’on a cherché à faire ressortir et à développer la partie défendable du pragmatisme de Dingler. Le programme « purifié » de ce « constructivisme méthodique » consiste à reconstruire les connaissances scientifiques à partir du savoir-faire sur lequel repose la construction des instruments de mesure.
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  • Friedman׳s Thesis.Ryan Samaroo - 2015 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 52 (Part B):129-138.
    This essay examines Friedman's recent approach to the analysis of physical theories. Friedman argues against Quine that the identification of certain principles as ‘constitutive’ is essential to a satisfactory methodological analysis of physics. I explicate Friedman's characterization of a constitutive principle, and I evaluate his account of the constitutive principles that Newtonian and Einsteinian gravitation presuppose for their formulation. I argue that something close to Friedman's thesis is defensible.
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  • Two Dogmas of Empiricism.W. V. Quine - 1951 - Philosophical Review 60 (1):20-43.
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  • Two Dogmas of Empiricism.Willard V. O. Quine - 1951 - Philosophical Review 60 (1):20–43.
    Modern empiricism has been conditioned in large part by two dogmas. One is a belief in some fundamental cleavage between truths which are analytic, or grounded in meanings independently of matters of fact, and truth which are synthetic, or grounded in fact. The other dogma is reductionism: the belief that each meaningful statement is equivalent to some logical construct upon terms which refer to immediate experience. Both dogmas, I shall argue, are ill founded. One effect of abandoning them is, as (...)
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  • Two Dogmas of Empiricism.W. V. O. Quine - 2011 - In Robert B. Talisse & Scott F. Aikin (eds.), The Pragmatism Reader: From Peirce Through the Present. Princeton University Press. pp. 202-220.
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  • Kant, Schlick and Friedman on Space, Time and Gravity in Light of Three Lessons from Particle Physics.J. Brian Pitts - 2018 - Erkenntnis 83 (2):135-161.
    Kantian philosophy of space, time and gravity is significantly affected in three ways by particle physics. First, particle physics deflects Schlick’s General Relativity-based critique of synthetic a priori knowledge. Schlick argued that since geometry was not synthetic a priori, nothing was—a key step toward logical empiricism. Particle physics suggests a Kant-friendlier theory of space-time and gravity presumably approximating General Relativity arbitrarily well, massive spin-2 gravity, while retaining a flat space-time geometry that is indirectly observable at large distances. The theory’s roots (...)
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  • Why Constructive Relativity Fails.John D. Norton - 2008 - British Journal for the Philosophy of Science 59 (4):821-834.
    Constructivists, such as Harvey Brown, urge that the geometries of Newtonian and special relativistic spacetimes result from the properties of matter. Whatever this may mean, it commits constructivists to the claim that these spacetime geometries can be inferred from the properties of matter without recourse to spatiotemporal presumptions or with few of them. I argue that the construction project only succeeds if constructivists antecedently presume the essential commitments of a realist conception of spacetime. These commitments can be avoided only by (...)
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  • Buckets of water and waves of space: Why spacetime is probably a substance.Tim Maudlin - 1993 - Philosophy of Science 60 (2):183-203.
    This paper sketches a taxonomy of forms of substantivalism and relationism concerning space and time, and of the traditional arguments for these positions. Several natural sorts of relationism are able to account for Newton's bucket experiment. Conversely, appropriately constructed substantivalism can survive Leibniz's critique, a fact which has been obscured by the conflation of two of Leibniz's arguments. The form of relationism appropriate to the Special Theory of Relativity is also able to evade the problems raised by Field. I survey (...)
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  • Causal theories of time and the conventionality of simultaneity.David Malament - 1977 - Noûs 11 (3):293-300.
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  • Weyl and the Problem of Space: From Science to Philosophy.Carlos Lobo & Julien Bernard (eds.) - 2019 - Springer Verlag.
    This book investigates Hermann Weyl’s work on the problem of space from the early 1920s onwards. It presents new material and opens the philosophical problem of space anew, crossing the disciplines of mathematics, history of science and philosophy. With a Kantian starting point Weyl asks: among all the infinitely many conceivable metrical spaces, which one applies to the physical world? In agreement with general relativity, Weyl acknowledges that the metric can quantitatively vary with the physical situation. Despite this freedom, Weyl (...)
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  • Duality and ontology.Baptiste Le Bihan & James Read - 2018 - Philosophy Compass 13 (12):e12555.
    A ‘duality’ is a formal mapping between the spaces of solutions of two empirically equivalent theories. In recent times, dualities have been found to be pervasive in string theory and quantum field theory. Naïvely interpreted, duality-related theories appear to make very different ontological claims about the world—differing in e.g. space-time structure, fundamental ontology, and mereological structure. In light of this, duality-related theories raise questions familiar from discussions of underdetermination in the philosophy of science: in the presence of dual theories, what (...)
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  • Conventionalism about what? Where Duhem and Poincaré part ways.Milena Ivanova - 2015 - Studies in History and Philosophy of Science Part A 54:80-89.
    This paper examines whether, and in what contexts, Duhem’s and Poincaré’s views can be regarded as conventionalist or structural realist. After analysing the three different contexts in which conventionalism is attributed to them – in the context of the aim of science, the underdetermination problem and the epistemological status of certain principles – I show that neither Duhem’s nor Poincaré’s arguments can be regarded as conventionalist. I argue that Duhem and Poincaré offer different solutions to the problem of theory choice, (...)
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  • Conventionalism, structuralism and neo-Kantianism in Poincaré’s philosophy of science.Milena Ivanova - 2015 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 52 (Part B):114-122.
    Poincaré is well known for his conventionalism and structuralism. However, the relationship between these two theses and their place in Poincaré׳s epistemology of science remain puzzling. In this paper I show the scope of Poincaré׳s conventionalism and its position in Poincaré׳s hierarchical approach to scientific theories. I argue that for Poincaré scientific knowledge is relational and made possible by synthetic a priori, empirical and conventional elements, which, however, are not chosen arbitrarily. By examining his geometric conventionalism, his hierarchical account of (...)
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  • The constitutive a priori and the distinction between mathematical and physical possibility.Jonathan Everett - 2015 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 52 (Part B):139-152.
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  • Theory (In-)Equivalence and conventionalism in f(R) gravity.Patrick M. Duerr - 2021 - Studies in History and Philosophy of Science Part A 88 (C):10-29.
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  • Unweyling Three Mysteries of Nordström Gravity.Patrick M. Duerr - 2020 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics.
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  • Conventionalism and Modern Physics: A Re-Assessment.Robert DiSalle - 2002 - In Emily Carson & Renate Huber (eds.), Noûs. Springer. pp. 181--211.
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  • On Absolute Units.Neil Dewar - 2021 - British Journal for the Philosophy of Science 75 (1):1-30.
    How may we characterize the intrinsic structure of physical quantities such as mass, length, or electric charge? This article shows that group-theoretic methods—specifically, the notion of a free and transitive group action—provide an elegant way of characterizing the structure of scalar quantities, and uses this to give an intrinsic treatment of vector quantities. It also gives a general account of how different scalar or vector quantities may be algebraically combined with one another. Finally, it uses this apparatus to give a (...)
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  • General-Relativistic Covariance.Neil Dewar - 2020 - Foundations of Physics 50 (4):294-318.
    This is an essay about general covariance, and what it says about spacetime structure. After outlining a version of the dynamical approach to spacetime theories, and how it struggles to deal with generally covariant theories, I argue that we should think about the symmetry structure of spacetime rather differently in generally-covariant theories compared to non-generally-covariant theories: namely, as a form of internal rather than external symmetry structure.
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  • Inexpressible Ignorance.Shamik Dasgupta - 2015 - Philosophical Review 124 (4):441-480.
    Sometimes, ignorance is inexpressible. Lewis recognized this when he argued, in “Ramseyan Humility,” that we cannot know which property occupies which causal role. This peculiar state of ignorance arises in a number of other domains too, including ignorance about our position in space and the identities of individuals. In these cases, one does not know something, and yet one cannot give voice to one's ignorance in a certain way. But what does the ignorance in these cases consist in? This essay (...)
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  • Geometric Facts and Geometric Theory: Helmholtz and 20th-century Philosophy of Physical Geometry1.Martin Carrier - 1994 - In Lorenz Krüger (ed.), Universalgenie Helmholtz. Rückblick nach 100 Jahren. Akademie Verlag. pp. 276-292.
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  • Constructing or completing physical geometry? On the relation between theory and evidence in accounts of space-time structure.Martin Carrier - 1990 - Philosophy of Science 57 (3):369-394.
    The aim of this paper is to discuss the relation between the observation basis and the theoretical principles of General Relativity. More specifically, this relation is analyzed with respect to constructive axiomatizations of the observation basis of space-time theories, on the one hand, and in attempts to complete them, on the other. The two approaches exclude one another so that a choice between them is necessary. I argue that the completeness approach is preferable for methodological reasons.
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  • Riemann’s and Helmholtz-Lie’s problems of space from Weyl’s relativistic perspective.Julien Bernard - 2018 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 61:41-56.
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  • Minkowski spacetime and Lorentz invariance: The cart and the horse or two sides of a single coin.Pablo Acuña - 2016 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 55:1-12.
    Michel Janssen and Harvey Brown have driven a prominent recent debate concerning the direction of an alleged arrow of explanation between Minkowski spacetime and Lorentz invariance of dynamical laws in special relativity. In this article, I critically assess this controversy with the aim of clarifying the explanatory foundations of the theory. First, I show that two assumptions shared by the parties—that the dispute is independent of issues concerning spacetime ontology, and that there is an urgent need for a constructive interpretation (...)
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  • Relativitätstheorie Und Erkenntnis Apriori.Hans Reichenbach - 1920 - J. Springer.
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  • Dynamics of Reason.Michael Friedman - 2001 - Philosophy and Phenomenological Research 68 (3):702-712.
    This book introduces a new approach to the issue of radical scientific revolutions, or "paradigm-shifts," given prominence in the work of Thomas Kuhn. The book articulates a dynamical and historicized version of the conception of scientific a priori principles first developed by the philosopher Immanuel Kant. This approach defends the Enlightenment ideal of scientific objectivity and universality while simultaneously doing justice to the revolutionary changes within the sciences that have since undermined Kant's original defense of this ideal. Through a modified (...)
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  • Topics in the Foundations of General Relativity and Newtonian Gravitation Theory.David B. Malament - 2012 - Chicago: Chicago University Press.
    1.1 Manifolds . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 1 1.2 Tangent Vectors . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . (...)
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  • Shifts and reference.Bryan Cheng & James Read - 2022 - In Antonio Vassallo (ed.), The Foundations of Spacetime Physics: Philosophical Perspectives. New York, NY: Routledge.
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  • A Raum with a View.Neil Dewar & Joshua Eisenthal - 2020 - In Claus Beisbart, Tilman Sauer & Christian Wüthrich (eds.), Thinking About Space and Time: 100 Years of Applying and Interpreting General Relativity. Cham: Birkhäuser. pp. 111-132.
    A central issue in the philosophical debates over general relativity concerns the status of the metric field: should it be regarded as part of the background arena in which physical fields evolve, or as a physical field itself? In this paper, we approach this debate through its relationship to the so-called "Problem of Space": the problem of determining which abstract, mathematical geometries are candidate descriptions of physical space. In particular, we explore the way that Hermann Weyl tackled the Problem of (...)
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  • 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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  • The Metaphysics of Quantities.J. E. Wolff - 2020 - Oxford: Oxford University Press.
    What are physical quantities, and in particular, what makes them quantitative? This book presents an original answer to this question through the novel position of substantival structuralism, arguing that quantitativeness is an irreducible feature of attributes, and quantitative attributes are best understood as substantival structured spaces.
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  • Der Raum: Ein Beitrag zur Wissenschaftslehre.Rudolf Carnap - 1921 - Berlin: Reuther & Reichard.
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  • Das Mass der Dinge: Protophysik von Raum, Zeit und Materie.Peter Janich - 1997
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  • Reconsidering Logical Positivism.Michael Friedman - 1999 - New York: Cambridge University Press.
    In this collection of essays one of the preeminent philosophers of science writing offers a reinterpretation of the enduring significance of logical positivism, the revolutionary philosophical movement centered around the Vienna Circle in the 1920s and 30s. Michael Friedman argues that the logical positivists were radicals not by presenting a new version of empiricism but rather by offering a new conception of a priori knowledge and its role in empirical knowledge. This collection will be mandatory reading for any philosopher or (...)
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  • Understanding Space-Time: The Philosophical Development of Physics From Newton to Einstein.Robert DiSalle - 2006 - New York: Cambridge University Press.
    Presenting the history of space-time physics, from Newton to Einstein, as a philosophical development DiSalle reflects our increasing understanding of the connections between ideas of space and time and our physical knowledge. He suggests that philosophy's greatest impact on physics has come about, less by the influence of philosophical hypotheses, than by the philosophical analysis of concepts of space, time and motion, and the roles they play in our assumptions about physical objects and physical measurements. This way of thinking leads (...)
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  • Conventionalism.Yemima Ben-Menahem - 2006 - New York: Cambridge University Press.
    The daring idea that convention - human decision - lies at the root of so-called necessary truths, on the one hand, and much of empirical science, on the other, reverberates through twentieth-century philosophy, constituting a revolution comparable to Kant's Copernican revolution. Conventionalism is the first comprehensive study of this radical turn. One of the conclusions it reaches is that the term 'truth by convention', widely held to epitomize conventionalism, reflects a misunderstanding that has led to the association of conventionalism with (...)
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  • Hermann von Helmholtz.Lydia Patton - 2008 - Stanford Encyclopedia of Philosophy.
    Hermann von Helmholtz (1821-1894) participated in two of the most significant developments in physics and in the philosophy of science in the 19th century: the proof that Euclidean geometry does not describe the only possible visualizable and physical space, and the shift from physics based on actions between particles at a distance to the field theory. Helmholtz achieved a staggering number of scientific results, including the formulation of energy conservation, the vortex equations for fluid dynamics, the notion of free energy (...)
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  • Space, time, and spacetime.L. Sklar - 1976 - Revue Philosophique de la France Et de l'Etranger 172 (3):545-555.
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  • Conventionality of simultaneity.Allen Janis - 2008 - Stanford Encyclopedia of Philosophy.
    In his first paper on the special theory of relativity, Einstein indicated that the question of whether or not two spatially separated events were simultaneous did not necessarily have a definite answer, but instead depended on the adoption of a convention for its resolution. Some later writers have argued that Einstein's choice of a convention is, in fact, the only possible choice within the framework of special relativistic physics, while others have maintained that alternative choices, although perhaps less convenient, are (...)
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