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  1. The aim and structure of physical theory.Pierre Maurice Marie Duhem - 1954 - Princeton,: Princeton University Press.
    This classic work in the philosophy of physical science is an incisive and readable account of the scientific method. Pierre Duhem was one of the great figures in French science, a devoted teacher, and a distinguished scholar of the history and philosophy of science. This book represents his most mature thought on a wide range of topics.
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  • On empirically equivalent systems of the world.Willard van Orman Quine - 1975 - Erkenntnis 9 (3):313-28.
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  • Objectivity, value judgment, and theory choice.Thomas S. Kuhn - 1981 - In David Zaret (ed.), Review of Thomas S. Kuhn The Essential Tension: Selected Studies in Scientific Tradition and Change. Duke University Press. pp. 320--39.
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  • On the withering away of physical objects.Steven French - 1998 - In Elena Castellani (ed.), Interpreting Bodies: Classical and Quantum Objects in Modern Physics. Princeton University Press. pp. 93--113.
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  • (1 other version)Structural realism: The best of both worlds?John Worrall - 1989 - Dialectica 43 (1-2):99-124.
    The no-miracles argument for realism and the pessimistic meta-induction for anti-realism pull in opposite directions. Structural Realism---the position that the mathematical structure of mature science reflects reality---relieves this tension.
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  • Conceptual Development of 20th Century Field Theories.Tian Yu Cao - 1997 - Cambridge University Press.
    From reviews of the hardback edition: a deep study of 20th century field ... of the conceptual origins and development of twentieth century field theories, ...
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  • The methodology of scientific research programmes.Imre Lakatos - 1978 - New York: Cambridge University Press.
    Imre Lakatos' philosophical and scientific papers are published here in two volumes. Volume I brings together his very influential but scattered papers on the philosophy of the physical sciences, and includes one important unpublished essay on the effect of Newton's scientific achievement. Volume II presents his work on the philosophy of mathematics (much of it unpublished), together with some critical essays on contemporary philosophers of science and some famous polemical writings on political and educational issues. Imre Lakatos had an influence (...)
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  • Theory construction and selection in modern physics: the S matrix.James T. Cushing - 1990 - New York: Cambridge University Press.
    One of the major philosophical problems in physical sciences is what criteria should determine how scientific theories are selected and justified in practice and whether, in describing observable physical phenomena, such theories are effectively constrained to be unique. This book studies the example of a particular theory, the S-matrix theory. The S-matrix program was initiated by Heisenberg to deal with difficulties encountered in quantum field theories in describing particular phenomena. Since then, each theory has at different times been favored as (...)
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  • Book Review of Newton-Smith The Rationality of Science. [REVIEW]David Christensen - 1984 - Philosophical Review 93 (3):471.
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  • (2 other versions)Quantum non-locality and relativity: metaphysical intimations of modern physics.Tim Maudlin - 2002 - Malden, Mass.: Blackwell.
    Modern physics was born from two great revolutions: relativity and quantum theory. Relativity imposed a locality constraint on physical theories: since nothing can go faster than light, very distant events cannot influence one another. Only in the last few decades has it become clear that quantum theory violates this constraint. The work of J. S. Bell has demonstrated that no local theory can return the predictions of quantum theory. Thus it would seem that the central pillars of modern physics are (...)
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  • Introduction to the philosophy of science: cutting nature at its seams.Robert Klee - 1997 - New York: Oxford University Press.
    Introduction to the Philosophy of Science: Cutting Nature at Its Seams is a clear and lively explanation of key concepts and issues in the philosophy of science. It surveys the field from positivism to social constructivism, focusing on the metaphysical implications of science as a form of knowledge gathering that explains what the world is really like, while simultaneously arguing for the superiority of a holistic model of scientific theories over competing models. An innovative feature is the use of immunology (...)
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  • (1 other version)From physics to metaphysics.Michael Redhead - 1995 - New York: Cambridge University Press.
    The book is drawn from the Tarner lectures, delivered in Cambridge in 1993. It is concerned with the ultimate nature of reality, and how this is revealed by modern physical theories such as relativity and quantum theory. The objectivity and rationality of science are defended against the views of relativists and social constructionists. It is claimed that modern physics gives us a tentative and fallible, but nevertheless rational, approach to the nature of physical reality. The role of subjectivity in science (...)
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  • Search for a naturalistic world view.Abner Shimony - 1993 - New York, NY: Cambridge University Press.
    Abner Shimony is one of the most eminent of present-day philosophers of science, whose work has exerted a profound influence in both the philosophy and physics communities. This two-volume 1993 collection of his essays written over a period of forty years explores the interrelations between science and philosophy. Shimony regards the knowing subject as an entity in nature whose faculties must be studied from the points of view of evolutionary biology and empirical psychology. He maintains that the twentieth century is (...)
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  • How the laws of physics lie.Nancy Cartwright - 1983 - New York: Oxford University Press.
    In this sequence of philosophical essays about natural science, the author argues that fundamental explanatory laws, the deepest and most admired successes of modern physics, do not in fact describe regularities that exist in nature. Cartwright draws from many real-life examples to propound a novel distinction: that theoretical entities, and the complex and localized laws that describe them, can be interpreted realistically, but the simple unifying laws of basic theory cannot.
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  • Albert Einstein: Philosopher-Scientist.Stephen Toulmin - 1950 - Science and Society 14 (4):353-360.
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  • (3 other versions)Political Liberalism.J. Rawls - 1995 - Tijdschrift Voor Filosofie 57 (3):596-598.
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  • (4 other versions)The Structure of Scientific Revolutions.Thomas S. Kuhn - 1962 - Chicago, IL: University of Chicago Press. Edited by Ian Hacking.
    Thomas S. Kuhn's classic book is now available with a new index.
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  • The Limits Of Science (The Pittsburgh-Konstanz Series in the Philosophy and History of Science).Nicholas Rescher - 1999 - University of California Press.
    Perfected science is but an idealization that provides a useful contrast to highlight the limited character of what we do and can attain. This lies at the core of various debates in the philosophy of science and Rescher’s discussion focuses on the question: how far could science go in principle—what are the theoretical limits on science? He concentrates on what science can discover, not what it should discover. He explores in detail the existence of limits or limitations on scientific inquiry, (...)
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  • Quantum tunneling times: A crucial test for the causal program? [REVIEW]James T. Cushing - 1995 - Foundations of Physics 25 (2):269-280.
    It is generally believed that Bohm's version of quantum mechanics is observationally equivalent to standard quantum mechanics. A more careful statement is that the two theories will always make the same predictions for any question or problem that is well posed in both interpretations. The transit time of a “particle” between two points in space is not necessarily well defined in standard quantum mechanics, whereas it is in Bohm's theory since there is always a particle following a definite trajectory. For (...)
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  • Science and Values: The Aims of Science and Their Role in Scientific Debate.Larry Laudan - 1984 - University of California Press.
    Laudan constructs a fresh approach to a longtime problem for the philosopher of science: how to explain the simultaneous and widespread presence of both agreement and disagreement in science. Laudan critiques the logical empiricists and the post-positivists as he stresses the need for centrality and values and the interdependence of values, methods, and facts as prerequisites to solving the problems of consensus and dissent in science.
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  • The principles of quantum mechanics.Paul Dirac - 1930 - Oxford,: Clarendon Press.
    THE PRINCIPLE OF SUPERPOSITION. The need for a quantum theory Classical mechanics has been developed continuously from the time of Newton and applied to an ...
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  • Husserl on scientific method and conceptual change: A realist appraisal.Darrin W. Belousek - 1998 - Synthese 115 (1):71-98.
    Husserl claimed that all theoretical scientific concepts originate in and are valid in reference to 'life-world' experience and that scientific traditions preserve the sense and validity of such concepts through unitary and cumulative change. Each of these claims will, in turn, be sympathetically laid out and assessed in comparison with more standard characterizations of scientific method and conceptual change as well as the history of physics, concerning particularly the challenge they may pose for scientific realism. The Husserlian phenomenological framework is (...)
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  • Realism about what?Roger Jones - 1991 - Philosophy of Science 58 (2):185-202.
    Preanalytically, we are all scientific realists. But both philosophers and scientists become uncomfortable when forced into analysis. In the case of scientists, this discomfort often arises from practical difficulties in setting out a carefully described set of objects which adequately account for the phenomena with which they are concerned. This paper offers a set of representative examples of these difficulties for contemporary physicists. These examples challenge the traditional realist vision of mature scientific activity as struggling toward an ontologically well-defined world (...)
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  • (1 other version)Empirical equivalence and underdetermination.Larry Laudan & Jarrett Leplin - 1991 - Journal of Philosophy 88 (9):449-472.
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  • (1 other version)Empirical Equivalence and Underdetermination.Larry Laudan & Jarrett Leplin - 1991 - Journal of Philosophy 88 (9):449.
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  • (1 other version)A Confutation of Convergent Realism.Larry Laudan - 2001 - In Yuri Balashov & Alexander Rosenberg (eds.), Philosophy of Science: Contemporary Readings. New York: Routledge. pp. 211.
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  • Making quantum theory compatible with realism.GianCarlo Ghirardi - 2002 - Foundations of Science 7 (1-2):11-47.
    After a brief account of theway quantum theory deals with naturalprocesses, the crucial problem that such atheory meets, the measurement or, better, themacro-objectification problem is discussed.The embarrassing aspects of the occurrence ofentangled states involving macroscopic systemsare analyzed in details. The famous example ofSchroedinger's cat is presented and it ispointed out how the combined interplay of thesuperposition principle and the ensuingentanglement raises some serious difficultiesin working out a satisfactory quantum worldview, agreeing with our definiteperceptions. The orthodox solution to themacro-objectification problem, i.e. (...)
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  • On the method of theoretical physics.Albert Einstein - 1934 - Philosophy of Science 1 (2):163-169.
    If you wish to learn from the theoretical physicist anything about the methods which he uses, I would give you the following piece of advice: Don't listen to his words, examine his achievements. For to the discoverer in that field, the constructions of his imagination appear so necessary and so natural that he is apt to treat them not as the creations of his thoughts but as given realities.
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  • Is scientific methodology interestingly atemporal?James T. Cushing - 1990 - British Journal for the Philosophy of Science 41 (2):177-194.
    Any division between scientific practice and a metalevel of the methods and goals of science is largely a false dichotomy. Since a priori, foundationist or logicist approaches to normative principles have proven unequal to the task of representing actual scientific practice, methodologies of science must be abstracted from episodes in the history of science. Of course, it is possible that such characteristics could prove universal and constant across various eras. But, case studies show that they are not in anything beyond (...)
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  • Bohmian insights into quantum chaos.James T. Cushing - 2000 - Philosophy of Science 67 (3):445.
    The ubiquity of chaos in classical mechanics (CM), as opposed to the situation in standard quantum mechanics (QM), might be taken as speaking against QM being the fundamental theory of physical phenomena. Bohmian mechanics (BM), as a formulation of quantum theory, may clarify both the existence of chaos in the quantum domain and the nature of the classical limit. Two interesting possibilities are (i) that CM and classical chaos are included in and underwritten by quantum mechanics (BM) or (ii) that (...)
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  • Equivalent descriptions.Yemima Ben-Menahem - 1990 - British Journal for the Philosophy of Science 41 (2):261-279.
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  • Non‐seperability, non‐supervenience, and quantum ontology.Darrin W. Belousek - 2003 - Philosophy of Science 70 (4):791-811.
    An argument to the effect that quantum mechanics commits us to the existence of non-supervenient relations, and therefore that we should admit such relations into our quantum ontology as fundamental entities, has been given by Teller and reformulated by French. This paper aims, first, to explicate and evaluate that argument; second, to extend its premises in order to assess its relevance for other interpretations of quantum mechanics; and, third, to clarify its implications for holism and individuation in quantum ontology.
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  • Formalism, ontology and methodology in Bohmian mechanics.Darrin W. Belousek - 2003 - Foundations of Science 8 (2):109-172.
    The relationship between mathematical formalism, physical interpretation and epistemological appraisal in the practice of physical theorizing is considered in the context of Bohmian mechanics. After laying outthe formal mathematical postulates of thetheory and recovering the historical roots ofthe present debate over the meaning of Bohmianmechanics from the early debate over themeaning of Schrödinger's wave mechanics,several contemporary interpretations of Bohmianmechanics in the literature are discussed andcritiqued with respect to the aim of causalexplanation and an alternative interpretationis proposed. Throughout, the over-arching aimis (...)
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  • Bell's theorem, nonseparability, and spacetime individuation in quantum mechanics.Darrin W. Belousek - 1999 - Philosophy of Science 66 (3):46.
    We first examine Howard's analysis of the Bell factorizability condition in terms of 'separability' and 'locality' and then consider his claims that the violations of Bell's inequality by the statistical predictions of quantum mechanics should be interpreted in terms of 'nonseparability' rather than 'nonlocality' and that 'nonseparability' implies the failure of spacetime as a principle of individuation for quantum-mechanical systems. We will argue that his argument for the first claim is less than compelling and that any argument for the second (...)
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  • Correspondence, Invariance and Heuristics: In Praise of Conservative Induction.H. R. Post - 1971 - Studies in History and Philosophy of Science Part A 2 (3):213.
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  • The Rationality of Science.W. Newton-Smith - 1981 - Boston: Routledge.
    First published in 2002. Routledge is an imprint of Taylor & Francis, an informa company.
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  • A case for scientific realism.Ernan McMullin - 1984 - In Jarrett Leplin (ed.), Scientific Realism. University of California. pp. 8--40.
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  • Quantum Mechanics: Historical Contingency and the Copenhagen Hegemony.James T. Cushing - 1994 - University of Chicago Press.
    Why does one theory "succeed" while another, possibly clearer interpretation, fails? By exploring two observationally equivalent yet conceptually incompatible views of quantum mechanics, James T. Cushing shows how historical contingency can be crucial to determining a theory's construction and its position among competing views. Since the late 1920s, the theory formulated by Niels Bohr and his colleagues at Copenhagen has been the dominant interpretation of quantum mechanics. Yet an alternative interpretation, rooted in the work of Louis de Broglie in the (...)
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  • Peirce's Philosophy of Science.Nicholas Rescher - 1979 - Philosophy 54 (210):566-567.
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  • The Principles of Quantum Mechanics.P. A. M. Dirac - 1936 - Revue de Métaphysique et de Morale 43 (2):5-5.
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  • From Physics to Metaphysics.Paul Teller - 1997 - Philosophical Review 106 (2):272.
    The book is drawn from the Tarner lectures, delivered in Cambridge in 1993. It is concerned with the ultimate nature of reality, and how this is revealed by modern physical theories such as relativity and quantum theory. The objectivity and rationality of science are defended against the views of relativists and social constructionists. It is claimed that modern physics gives us a tentative and fallible, but nevertheless rational, approach to the nature of physical reality. The role of subjectivity in science (...)
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  • Objectivity, Rationality, and Scientific Change.Dudley Shapere - 1984 - PSA: Proceedings of the Biennial Meeting of the Philosophy of Science Association 1984:637 - 663.
    "Objectivity" and "rationality" of science do not depend on freedom from all "presuppositions", but are inextricably bound with the employment of background beliefs, so long as those background beliefs satisfy certain constraints. These latter have developed through application of the same kind of reasoning that they themselves dictate, and change in response to changes in the reasoning-patterns which they themselves generate. This interaction of constraints and reasoning does not eventuate in a vicious circle; rather, what results is a mutual reinforcement, (...)
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  • Models and mathematics in physics: The role of group theory.Steven French - 1999 - In Jeremy Butterfield & Constantine Pagonis (eds.), From Physics to Philosophy. Cambridge University Press. pp. 187--207.
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  • Statistics, Symmetry, and the Conventionality of Indistinguishability in Quantum Mechanics.Darrin W. Belousek - 2000 - Foundations of Physics 30 (1):1-34.
    The question to be addressed is, In what sense and to what extent do quantum statistics for, and the standard formal quantum-mechanical description of, systems of many identical particles entail that identical quantum particles are indistinguishable? This paper argues that whether or not we consider identical quantum particles as indistinguishable is a matter of theory choice underdetermined by logic and experiment.
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  • The Aim and Structure of Physical Theory.Pierre Duhem & Philip P. Wiener - 1955 - Science and Society 19 (1):85-87.
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  • Theory Construction and Selection in Modern Physics: The S Matrix.James T. Cushing - 1992 - British Journal for the Philosophy of Science 43 (3):431-433.
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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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  • Statistics, Symmetry, and (In)Distinguishability in Bohmian Mechanics.Darrin W. Belousek - 2000 - Foundations of Physics 30 (1):153-164.
    This paper continues an earlier work by considering in what sense and to what extent identical Bohmian-mechanical particles in many-particle systems can be considered indistinguishable. We conclude that while whether identical Bohmian-mechanical particles ace considered to be “statistically (in)distinguishable” is a matter of theory choice underdetermined by logic and experiment, such particles are in any case “physically distinguishable.”.
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  • Perspectives on quantum reality: A critical survey.Darrin W. Belousek - 1997 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 28 (3):415-420.
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  • Perspectives on quantum reality: A critical survey.Darrin W. Belousek - 1997 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 28 (3):415-420.
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