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  1. Evidence and Evolution: The Logic Behind the Science.Elliott Sober - 2008 - Cambridge University Press.
    How should the concept of evidence be understood? And how does the concept of evidence apply to the controversy about creationism as well as to work in evolutionary biology about natural selection and common ancestry? In this rich and wide-ranging book, Elliott Sober investigates general questions about probability and evidence and shows how the answers he develops to those questions apply to the specifics of evolutionary biology. Drawing on a set of fascinating examples, he analyzes whether claims about intelligent design (...)
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  • Image and Logic: A Material Culture of Microphysics.Peter Galison (ed.) - 1997 - University of Chicago Press: Chicago.
    Engages with the impact of modern technology on experimental physicists. This study reveals how the increasing scale and complexity of apparatus has distanced physicists from the very science which drew them into experimenting, and has fragmented microphysics into different technical traditions.
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  • The Sun, the Genome & the Internet: Tools of Scientific Revolutions.Freeman J. Dyson - 1999 - New York: Oxford University Press.
    In this visionary look into the future, Freeman Dyson argues that technological changes fundamentally alter our ethical and social arrangements and that three rapidly advancing new technologies--solar energy, genetic engineering, and world-wide communication--together have the potential to create a more equal distribution of the world's wealth. Dyson begins by rejecting the idea that scientific revolutions are primarily concept driven. He shows rather that new tools are more often the sparks that ignite scientific discovery. Such tool-driven revolutions have profound social consequences--the (...)
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  • Toward a History of Epistemic Things: Synthesizing Proteins in the Test Tube.Hans-Jörg Rheinberger - 1997 - Stanford University Press.
    In this powerful work of conceptual and analytical originality, the author argues for the primacy of the material arrangements of the laboratory in the dynamics of modern molecular biology. In a post-Kuhnian move away from the hegemony of theory, he develops a new epistemology of experimentation in which research is treated as a process for producing epistemic things. A central concern of the book is the basic question of how novelty is generated in the empirical sciences. In addressing this question, (...)
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  • Kuhn’s Structure of Scientific Revolutions - 50 Years On.William J. Devlin & Alisa Bokulich (eds.) - 2015 - Cham: Boston Studies in the Philosophy and History of Science, vol. 311. Springer.
    In 1962, the publication of Thomas Kuhn’s Structure ‘revolutionized’ the way one conducts philosophical and historical studies of science. Through the introduction of both memorable and controversial notions, such as paradigms, scientific revolutions, and incommensurability, Kuhn argued against the traditionally accepted notion of scientific change as a progression towards the truth about nature, and instead substituted the idea that science is a puzzle solving activity, operating under paradigms, which become discarded after it fails to respond accordingly to anomalous challenges and (...)
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  • (2 other versions)Criticism and the Methodology of Scientific Research Programmes.Imre Lakatos - 1969 - Proceedings of the Aristotelian Society 69 (1):149 - 186.
    Imre Lakatos; II—Criticism and the Methodology of Scientific Research Programmes, Proceedings of the Aristotelian Society, Volume 69, Issue 1, 1 June 1969, Page.
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  • (6 other versions)The Structure of Scientific Revolutions.Thomas Samuel Kuhn - 1962 - Chicago: University of Chicago Press. Edited by Otto Neurath.
    A scientific community cannot practice its trade without some set of received beliefs. These beliefs form the foundation of the "educational initiation that prepares and licenses the student for professional practice". The nature of the "rigorous and rigid" preparation helps ensure that the received beliefs are firmly fixed in the student's mind. Scientists take great pains to defend the assumption that scientists know what the world is like...To this end, "normal science" will often suppress novelties which undermine its foundations. Research (...)
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  • (4 other versions)The road since structure.Thomas S. Kuhn - 1991 - In A. Fine, M. Forbes & L. Wessels (eds.), Psa 1990. Philosophy of Science Association. pp. 3-13.
    A highly condensed account of the author's present view of some philosophical problems unresolved in The Structure of Scientific Revolutions. The concept of incommensurability, now considerably developed, remains at center stage, but the evolutionary metaphor, introduced in the final pages of the book, now also plays a principal role.
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  • The Copernican Revolution: Planetary Astronomy in the Development of Western Thought.Thomas S. Kuhn - 1957 - Harvard University Press.
    The significance of the plurality of the Copernican Revolution is the main thrust of this undergraduate text In this study of the Copernican Revolution, the ...
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  • (6 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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  • (4 other versions)The Logic of Scientific Discovery.Karl Popper - 1959 - Studia Logica 9:262-265.
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  • (2 other versions)The Prion Challenge to the `Central Dogma' of Molecular Biology, 1965–1991.Martha E. Keyes - 1999 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 30 (2):181-218.
    Since the 1930s, scientists studying the neurological disease scrapie had assumed that the infectious agent was a virus. By the mid 1960s, however, several unconventional properties had arisen that were difficult to reconcile with the standard viral model. Evidence for nucleic acid within the pathogen was lacking, and some researchers considered the possibility that the infectious agent consisted solely of protein. In 1982, Stanley Prusiner coined the term `prion' to emphasize the agent's proteinaceous nature. This infectious protein hypothesis was denounced (...)
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  • (2 other versions)The Prion Challenge to the `Central Dogma' of Molecular Biology, 1965–1991.Martha E. Keyes - 1999 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 30 (1):1-19.
    Since the 1930s, scientists studying the neurological disease scrapie had assumed that the infectious agent was a virus. By the mid 1960s, however, several unconventional properties had arisen that were difficult to reconcile with the standard viral model. Evidence for nucleic acid within the pathogen was lacking, and some researchers considered the possibility that the infectious agent consisted solely of protein. In 1982, Stanley Prusiner coined the term `prion' to emphasize the agent's proteinaceous nature. This infectious protein hypothesis was denounced (...)
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  • The Eighth Day of Creation: Makers of the Revolution in Biology.[author unknown] - 1980 - Journal of the History of Biology 13 (1):141-158.
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  • (1 other version)Straw dogs: thoughts on humans and other animals.John Gray - 2007 - New York: Farrar, Straus, and Giroux.
    The British bestseller Straw Dogs is an exciting, radical work of philosophy, which sets out to challenge our most cherished assumptions about what it means to be human. From Plato to Christianity, from the Enlightenment to Nietzsche and Marx, the Western tradition has been based on arrogant and erroneous beliefs about human beings and their place in the world. Philosophies such as liberalism and Marxism think of humankind as a species whose destiny is to transcend natural limits and conquer the (...)
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  • (1 other version)Reasoning in biological discoveries.Lindley Darden - manuscript
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  • (4 other versions)The Road since Structure.Thomas S. Kuhn - 1990 - PSA: Proceedings of the Biennial Meeting of the Philosophy of Science Association 1990:3-13.
    A highly condensed account of the author's present view of some philosophical problems unresolved in The Structure of Scientific Revolutions. The concept of incommensurability, now considerably developed, remains at center stage, but the evolutionary metaphor, introduced in the final pages of the book, now also plays a principal role.
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  • Toward a History of Epistemic Things: Synthesizing Proteins in a Test Tube.[author unknown] - 1999 - Journal of the History of Biology 32 (3):563-565.
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  • (4 other versions)The Logic of Scientific Discovery.K. Popper - 1959 - British Journal for the Philosophy of Science 10 (37):55-57.
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  • Normal science and its dangers.Karl Popper - 1970 - In Imre Lakatos & Alan Musgrave (eds.), Criticism and the growth of knowledge. Cambridge [Eng.]: Cambridge University Press. pp. 51--8.
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  • (2 other versions)The Prion Challenge to the `Central Dogma' of Molecular Biology, 1965–1991.Martha E. Keyes - 1999 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 30 (2):181-218.
    Since the 1930s, scientists studying the neurological disease scrapie had assumed that the infectious agent was a virus. By the mid 1960s, however, several unconventional properties had arisen that were difficult to reconcile with the standard viral model. Evidence for nucleic acid within the pathogen was lacking, and some researchers considered the possibility that the infectious agent consisted solely of protein. In 1982, Stanley Prusiner coined the term `prion' to emphasize the agent's proteinaceous nature. This infectious protein hypothesis was denounced (...)
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  • Whigs and Stories: Herbert Butterfield and the Historiography of Science.Nicholas Jardine - 2003 - History of Science 41 (2):125-140.
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  • (1 other version)Reasoning in Biological Discoveries: Essays on Mechanisms, Interfield Relations, and Anomaly Resolution.Lindley Darden - 2006 - New York: Cambridge University Press.
    Reasoning in Biological Discoveries brings together a series of essays, which focus on one of the most heavily debated topics of scientific discovery. Collected together and richly illustrated, Darden's essays represent a groundbreaking foray into one of the major problems facing scientists and philosophers of science. Divided into three sections, the essays focus on broad themes, notably historical and philosophical issues at play in discussions of biological mechanism; and the problem of developing and refining reasoning strategies, including interfield relations and (...)
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  • When is historiography whiggish?Ernst Mayr - 1990 - Journal of the History of Ideas 51 (2):301-309.
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  • The philosophy of Karl Popper.Herbert Keuth - 2005 - New York: Cambridge University Press.
    Karl Popper is one of the greatest and most influential philosophers of the twentieth century. Originally published in German in 2000, Herbert Keuth's book is a systematic exposition of Popper's philosophy covering the philosophy of science (Part 1); social philosophy (Part 2); and metaphysics (Part 3). More comprehensive than any current introduction to Popper, it is suitable for courses in the philosophy of science and the philosophy of social science.
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  • Can Theories Be Refuted?Graham Priest & Sandra Harding - 1977 - Philosophical Quarterly 27 (106):73.
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  • Heraclitean Fire. Sketches from a Life before Nature.E. Chargaff - 1979 - Tijdschrift Voor Filosofie 41 (4):715-716.
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  • To Err and Win a Nobel Prize: Paul Boyer, ATP Synthase and the Emergence of Bioenergetics. [REVIEW]Douglas Allchin - 2002 - Journal of the History of Biology 35 (1):149 - 172.
    Paul Boyer shared a Nobel Prize in 1997 for his work on the mechanism of ATP synthase. His earlier work, though (which contributed indirectly to his triumph), included major errors, both experimental and theoretical. Two benchmark cases offer insight into how scientists err and how they deal with error. Boyer's work also parallels and illustrates the emergence of bioenergetics in the second half of the twentieth century, rivaling achievements in evolution and molecular biology.
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  • Is the History of Science Essentially Whiggish?David Alvargonzález - 2013 - History of Science 51 (1):85-99.
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  • A Twentieth-Century Phlogiston: Constructing Error and Differentiating Domains.Douglas Allchin - 1997 - Perspectives on Science 5 (1):81-127.
    In the 1950s–60s biochemists searched intensively for a series of high-energy molecules in the cell. Although we now believe that these molecules do not exist, biochemists claimed to have isolated or identified them on at least sixteen occasions. The episode parallels the familiar eighteenth-century case of phlogiston, in illustrating how error is not simply the loss of facts but, instead, must be actively constructed. In addition, the debates surrounding each case demonstrate how revolutionary-scale disagreement is sometimes resolved by differentiating or (...)
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  • Experiment and Orientation: Early Systems of in vitro Protein Synthesis. [REVIEW]Hans-Jörg Rheinberger - 1993 - Journal of the History of Biology 26 (3):443 - 471.
    The living world is one of complexity, the result of innumerable interactions among organisms, cells, molecules. In analyzing a problem, the biologist is constrained to focus on a fragment of reality, on a piece of the universe which he arbitrarily isolates to define certain of its parameters.In biology, any study thus begins with the choice of a “system.” On this choice depend the experimenter's freedom to maneuver, the nature of the questions he is free to ask, and even, often, the (...)
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  • From Microsomes to Ribosomes: "Strategies" of "Representation". [REVIEW]Hans-Jörg Rheinberger - 1995 - Journal of the History of Biology 28 (1):49 - 89.
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