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  1. Of pots and holes: Einstein's bumpy road to general relativity.Michel Janssen - unknown
    Readers of this volume will notice that it contains only a few papers on general relativity. This is because most papers documenting the genesis and early development of general relativity were not published in Annalen der Physik . After Einstein took up his new prestigious position at the Prussian Academy of Sciences in the spring of 1914, the Sitzungsberichte of the Berlin academy almost by default became the main outlet for his scientific production. Two of the more important papers on (...)
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  • The gravitational red shift as a test of general relativity: History and analysis.John Earman & Clark Glymour - 1980 - Studies in History and Philosophy of Science Part A 11 (3):175-214.
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  • (1 other version)Einstein's struggle for a Machian gravitation theory.Carl Hoefer - 1994 - Studies in History and Philosophy of Science Part A 25 (3):287-335.
    The story of Einstein's struggle to create a general theory of relativity, and his early discontentment with the final form of the theory , is well known in broad outline. Thanks to the work of John Norton and others, much of the fine detail of the story is also now known. One aspect of Einstein's work in this period has, however, been relatively neglected: Einstein's commitment to Mach's ideas on inertia, and the influence this commitment had on Einstein's work on (...)
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  • There's a Hole and a Bucket, Dear Leibniz.Mark Wilson - 1993 - Midwest Studies in Philosophy 18 (1):202-241.
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  • 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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  • Relativity: the general theory.John Lighton Synge (ed.) - 1960 - New York,: Interscience Publishers.
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  • The meaning of general covariance.John Stachel - 1993 - In John Earman (ed.), Philosophical Problems of the Internal and External World. University of Pittsburgh Press. pp. 129--60.
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  • Über den physikalischen sinn der relativitätspostulate.E. Kretschmann - 1917 - Annalen Der Physik 53:575--614.
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  • General covariance and the foundations of general relativity: Eight decades of dispute.John D. Norton - 1993 - Reports of Progress in Physics 56:791--861.
    iinstein oered the prin™iple of gener—l ™ov—ri—n™e —s the fund—ment—l physi™—l prin™iple of his gener—l theory of rel—tivityD —nd —s responsi˜le for extending the prin™iple of rel—tivity to —™™eler—ted motionF „his view w—s disputed —lmost immedi—tely with the ™ounterE™l—im th—t the prin™iple w—s no rel—tivity prin™iple —nd w—s physi™—lly v—™uousF „he dis—greeE ment persists tod—yF „his —rti™le reviews the development of iinstein9s thought on gener—l ™ov—ri—n™eD its rel—tion to the found—tions of gener—l rel—tivity —nd the evolution of the ™ontinuing de˜—te (...)
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  • From classical to relativistic mechanics: Electromagnetic models of the electron.Michel Janssen - unknown
    “Special relativity killed the classical dream of using the energy-momentumvelocity relations as a means of probing the dynamical origins of [the mass of the electron]. The relations are purely kinematical” (Pais, 1982, 159). This perceptive comment comes from a section on the pre-relativistic notion of electromagnetic mass in ‘Subtle is the Lord . . . ’, Abraham Pais’ highly acclaimed biography of Albert Einstein. ‘Kinematical’ in this context means ‘independent of the details of the dynamics’. In this paper we examine (...)
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  • COI Stories: Explanation and Evidence in the History of Science.Michel Janssen - 2002 - Perspectives on Science 10 (4):457-522.
    This paper takes as its point of departure two striking incongruities between scientiªc practice and trends in modern history and philosophy of science. (1) Many modern historians of science are so preoccupied with local scientiªc practices that they fail to recognize important non-local elements. (2) Many modern philosophers of science make a sharp distinction between explanation and evidence, whereas in scientiªc practice explanatory power is routinely used as evidence for scientiªc claims. I draw attention to one speciªc way in..
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  • (1 other version)Points, particles, and structural realism.Oliver Pooley - 2006 - In Dean Rickles, Steven French & Juha T. Saatsi (eds.), The Structural Foundations of Quantum Gravity. Oxford, GB: Oxford University Press. pp. 83--120.
    In his paper ``What is Structural Realism?'' James Ladyman drew a distinction between epistemological structural realism and metaphysical (or ontic) structural realism. He also drew a suggestive analogy between the perennial debate between substantivalist and relationalist interpretations of spacetime on the one hand, and the debate about whether quantum mechanics treats identical particles as individuals or as `non-individuals' on the other. In both cases, Ladyman's suggestion is that an ontic structural realist interpretation of the physics might be just what is (...)
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  • Relativity.Michel Janssen - 2004
    A brief review (~8K words) of the history and philosophy of special and general relativity for a Dictionary of the History of Ideas.
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  • On the history of the so-called lense-Thirring effect.Pfister Herbert - unknown
    Some historical documents, especially the Einstein-Besso manuscript from 1913, an extensive notebook by Hans Thirring from 1917, and a correspondence between Thirring and Albert Einstein in the year 1917 reveal that most of the merit of the so-called Lense-Thirring effect of general relativity belongs to Einstein. Besides this ``central story" of the effect, we comment shortly on some type of prehistory, with contributions by Mach, Benedikt and Immanuel Friedlaender, and August Foeppl, and we follow the later history of the problem (...)
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  • Absolute versus relational space‐time: An outmoded debate.Robert Rynasiewicz - 1996 - Journal of Philosophy 93 (6):279-306.
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  • Rings, holes and substantivalism: On the program of Leibniz algebras.Robert Rynasiewicz - 1992 - Philosophy of Science 59 (4):572-589.
    In a number of publications, John Earman has advocated a tertium quid to the usual dichotomy between substantivalism and relationism concerning the nature of spacetime. The idea is that the structure common to the members of an equivalence class of substantival models is captured by a Leibniz algebra which can then be taken to directly characterize the intrinsic reality only indirectly represented by the substantival models. An alleged virtue of this is that, while a substantival interpretation of spacetime theories falls (...)
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  • The force of Newtonian cosmology: Acceleration is relative.John D. Norton - 1995 - Philosophy of Science 62 (4):511-522.
    1. Introduction. David Malament has described a natural and satisfying resolution of the traditional problems of Newtonian cosmology—natural in the sense that it effects the escape by altering Newtonian gravitation theory in a way that leaves its observational predictions completely unaffected. I am in full agreement with his approach. There is one part of his account, however, over which Malament has been excessively modest. The resolution requires a modification to Newtonian gravitation theory. Malament presents the modification as so straightforward as (...)
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  • The Hole Argument.John D. Norton - 1988 - PSA: Proceedings of the Biennial Meeting of the Philosophy of Science Association 1988:56 - 64.
    I give an informal outline of the hole argument which shows that spacetime substantivalism leads to an undesirable indeterminism in a broad class of spacetime theories. This form of the argument depends on the selection of differentiable manifolds within a spacetime theory as representing spacetime. I consider the conditions under which the argument can be extended to address versions of spacetime substantivalism which select these differentiable manifolds plus some further structure to represent spacetime. Finally, I respond to the criticisms of (...)
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  • What price spacetime substantivalism? The hole story.John Earman & John Norton - 1987 - British Journal for the Philosophy of Science 38 (4):515-525.
    Spacetime substantivalism leads to a radical form of indeterminism within a very broad class of spacetime theories which include our best spacetime theory, general relativity. Extending an argument from Einstein, we show that spacetime substantivalists are committed to very many more distinct physical states than these theories' equations can determine, even with the most extensive boundary conditions.
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  • Did Einstein need general relativity to solve the problem of absolute space? Or had the problem already been solved by special relativity?Jon Dorling - 1978 - British Journal for the Philosophy of Science 29 (4):311-323.
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  • Newton's bucket experiment.Ronald Laymon - 1978 - Journal of the History of Philosophy 16 (4):399--413.
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  • Bangs, Crunches, Whimpers, and Shrieks: Singularities and Acausalities in Relativistic Spacetimes.John Earman - 1995 - Oxford University Press USA.
    Focusing on spacetime singularities, Earman engages with a host of foundational issues at the intersection of science and philosophy, ranging from the big bang to the possibility of time travel.
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  • Albert Einstein: Philosopher-Scientist.Paul Arthur Schilpp (ed.) - 1959 - Mjg Books.
    Written by the man considered the "Person of the Century" by Time magazine, this is not a glimpse into Einstein's personal life, but an extension and elaboration into his thinking on science. Two of the great theories of the physical world were created in the early 20th century: the theory of relativity and quantum mechanics. Einstein created the theory of relativity and was also one of the founders of quantum theory. Here, Einstein describes the failure of classical mechanics and the (...)
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  • Space from Zeno to Einstein. Classic Readings with a Contemporary Commentary.Nick Huggett - 2000 - Tijdschrift Voor Filosofie 62 (4):781-782.
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  • (1 other version)Philosophy of Geometry from Riemann to Poincaré.Roberto Torretti - 1978 - Revue de Métaphysique et de Morale 88 (4):565-571.
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  • The Leibniz-Clarke Correspondence.John Linnell - 1957 - Philosophy and Phenomenological Research 18 (2):277-277.
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  • Albert Einstein; Philosopher, Scientist.Paul Arthur Schilpp - 1951 - Philosophy 26 (99):363-365.
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  • The Leibniz-Clarke Correspondence.H. G. Alexander - 1956 - Philosophy 32 (123):365-366.
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  • (1 other version)Einstein and Singularities.John Earman & Jean Eisenstaedt - 1998 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 30 (2):185-235.
    Except for a few brief periods, Einstein was uninterested in analysing the nature of the spacetime singularities that appeared in solutions to his gravitational field equations for general relativity. The existence of such monstrosities reinforced his conviction that general relativity was an incomplete theory which would be superseded by a singularity-free unified field theory. Nevertheless, on a number of occasions between 1916 and the end of his life, Einstein was forced to confront singularities. His reactions show a strange asymmetry: he (...)
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  • (1 other version)Albert Einstein: Philosopher-Scientist.Paul Arthur Schilpp - 1951 - British Journal for the Philosophy of Science 2 (5):61-68.
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  • What was Einstein's Principle of Equivalence?John Norton - 1985 - Studies in History and Philosophy of Science Part A 16 (3):203.
    sn y™to˜er —nd xovem˜er IWHUD just over two ye—rs —fter the ™ompletion of his spe™i—l theory of rel—tivityD iinstein m—de the ˜re—kthrough th—t set him on the p—th to the gener—l theory of rel—tivityF ‡hile prep—ring — review —rti™le on his new spe™i—l theory of rel—tivityD he ˜e™—me ™onvin™ed th—t the key to the extension of the prin™iple of rel—tivity to —™™eler—ted motion l—y in the rem—rk—˜le —nd unexpl—ined empiri™—l ™oin™iden™e of the equ—lity of inerti—l —nd gr—vit—tion—l m—ssesF „o interpret (...)
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  • Mie's Theories of Matter and Gravitation.Chris Smeenk - 2007 - In Jürgen Renn (ed.), The Genesis of General Relativity. Springer. pp. 1543-1553.
    Unifying physics by describing a variety of interactions – or even all interactions – within a common framework has long been an alluring goal for physicists. One of the most ambitious attempts at unification was made in the 1910s by Gustav Mie. Mie aimed to derive electromagnetism, gravitation, and aspects of the emerging quantum theory from a single variational principle and a well-chosen Lagrangian. Mie’s main innovation was to consider nonlinear field equations to allow for stable particle-like solutions (now called (...)
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  • .Jeremy Butterfield & John Earman - 1977
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  • How Einstein Found His Field Equations: 1912-1915.John D. Norton - unknown
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  • Einstein, Nordstrom, and the Early Demise of Scalar, Lorentz Covariant Theories of Gravitation.John D. Norton - unknown
    The advent of the general theory of relativity was so entirely the work of just one person - Albert Einstein - that we cannot but wonder how long it would have taken without him for the connection between gravitation and spacetime curvature to be discovered. What would have happened if there were no Einstein? Few doubt that a theory much like special relativity would have emerged one way or another from the researchers of Lorentz, Poincaré and others. But where would (...)
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  • Geometries in Collision: Einstein, Klein and Riemann.John D. Norton - 1982 - In John Norton (ed.).
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  • Out of the Labyrinth: Einstein, Hertz and Göttingen Answer to the Hole Argument.John D. Norton & Don Howard - 1982 - In John Norton (ed.).
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  • (2 other versions)World enough and space‐time: Absolute versus relational theories of space and time.Robert Toretti & John Earman - 1989 - Philosophical Review 101 (3):723.
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  • Bangs, Crunches, Whimpers, and Shrieks: Singularities and Acausalities in Relativistic Spacetimes.Craig Callender & John Earman - 1998 - Philosophical Review 107 (1):142.
    For much of this century, philosophers hoped that Einstein’s general theory of relativity would play the role of physician to philosophy. Its development would positively influence the philosophy of methodology and confirmation, and its ontology would answer many traditional philosophical debates—for example, the issue of spacetime substantivalism. In physics, by contrast, the attitude is increasingly that GTR itself needs a physician. The more we learn about GTR the more we discover how odd are the spacetimes that it allows. Not only (...)
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  • Experience and Prediction. An Analysis of the Foundations and the Structure of Knowledge. [REVIEW]E. N. & Hans Reichenbach - 1938 - Journal of Philosophy 35 (10):270.
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  • Autobiographical Notes.Max Black, Albert Einstein & Paul Arthur Schilpp - 1949 - Journal of Symbolic Logic 15 (2):157.
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  • (4 other versions)The Meaning of Relativity.Albert Einstein - 1922 - London,: Routledge. Edited by Edwin P. Adams.
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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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  • (1 other version)Einstein and Singularities.John Earman & Jean Eisenstaedt - 1999 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 30 (2):185-235.
    Except for a few brief periods, Einstein was uninterested in analysing the nature of the spacetime singularities that appeared in solutions to his gravitational field equations for general relativity. The existence of such monstrosities reinforced his conviction that general relativity was an incomplete theory which would be superseded by a singularity-free unified field theory. Nevertheless, on a number of occasions between 1916 and the end of his life, Einstein was forced to confront singularities. His reactions show a strange asymmetry: he (...)
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  • Which symmetry? Noether, Weyl, and conservation of electric charge.Katherine A. Brading - 2002 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 33 (1):3-22.
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  • Substances and space-time: What Aristotle would have said to Einstein.Tim Maudlin - 1990 - Studies in History and Philosophy of Science Part A 21 (4):531-561.
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  • (2 other versions)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 human knowledge. With (...)
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  • (2 other versions)Albert Einstein: Philosopher-Scientist.Stephen Toulmin - 1950 - Science and Society 14 (4):353-360.
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  • Sidelights on Relativity.A. Einstein, G. B. Jeffery & W. Perrett - 1925 - Philosophical Review 34 (2):204-205.
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  • Traveling at the Speed of Thought: Einstein and the Quest for Gravitational Waves.Daniel Kennefick - 2007 - Princeton University Press.
    "This book is a very impressive achievement. Kennefick skillfully introduces readers to some of the most abstruse yet fascinating concepts in modern physics stemming from Einstein's gravitational theory.
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