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Does the distinction between normal and revolutionary science hold water?

In Imre Lakatos & Alan Musgrave (eds.), Criticism and the growth of knowledge. Cambridge [Eng.]: Cambridge University Press. pp. 39--47 (1970)

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  1. Thomas Kuhn.Alexander Bird - 2018 - Stanford Encyclopedia of Philosophy.
    Thomas Samuel Kuhn (1922–1996) is one of the most influential philosophers of science of the twentieth century, perhaps the most influential. His 1962 book The Structure of Scientific Revolutions is one of the most cited academic books of all time. Kuhn’s contribution to the philosophy of science marked not only a break with several key positivist doctrines, but also inaugurated a new style of philosophy of science that brought it closer to the history of science. His account of the development (...)
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  • Arguing on the Toulmin Model: New Essays in Argument Analysis and Evaluation.David Hitchcock & Bart Verheij (eds.) - 2006 - Dordrecht, Netherland: Springer.
    In The Uses of Argument, Stephen Toulmin proposed a model for the layout of arguments: claim, data, warrant, qualifier, rebuttal, backing. Since then, Toulmin’s model has been appropriated, adapted and extended by researchers in speech communications, philosophy and artificial intelligence. This book assembles the best contemporary reflection in these fields, extending or challenging Toulmin’s ideas in ways that make fresh contributions to the theory of analysing and evaluating arguments.
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  • The Influence of James B. Conant on Kuhn’s Structure of Scientific Revolutions.K. Brad Wray - 2016 - Hopos: The Journal of the International Society for the History of Philosophy of Science 6 (1):1-23.
    I examine the influence of James B. Conant on the writing of Kuhn’s Structure of Scientific Revolutions. By clarifying Conant’s influence on Kuhn, I also clarify the influence that others had on Kuhn’s thinking. And by identifying the various influences that Conant had on Kuhn’s view of science, I identify Kuhn’s most original contributions in Structure. On the one hand, I argue that much of the framework and many of the concepts that figure in Structure were part of Conant’s picture (...)
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  • The evolutionary structure of scientific theories.John S. Wilkins - 1998 - Biology and Philosophy 13 (4):479–504.
    David Hull's (1988c) model of science as a selection process suffers from a two-fold inability: (a) to ascertain when a lineage of theories has been established; i.e., when theories are descendants of older theories or are novelties, and what counts as a distinct lineage; and (b) to specify what the scientific analogue is of genotype and phenotype. This paper seeks to clarify these issues and to propose an abstract model of theories analogous to particulate genetic structure, in order to reconstruct (...)
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  • Brad Wray Kuhn's evolutionary social epistemology.Rupert Read & Jessica Woolley - 2013 - British Journal for the Philosophy of Science 64 (3):659-664.
  • Historical self-understanding in the social sciences: The use of Thomas Kuhn in psychology.Gerald L. Peterson - 1981 - Journal for the Theory of Social Behaviour 11 (1):1–30.
    Thomas Kuhn's thesis concerning the structure of scientific change was critically examined in relation to the historical problems of social science. The use and interpretation of Kuhn's ideas by psychologists was reviewed and found to center around the proliferation of theoretical views as paradigms, the viewing of theoretical differences as paradigm clashes, and efforts to affirm particular conceptions of psychology's past or future. Such use was seen as curbing discussion of fundamental issues, and to reflect a continuing neglect of the (...)
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  • A Nonlinear View of Scientific Progression: A Reevaluation of Kaposy's Supposed Obligation.Jason D. Keune - 2010 - American Journal of Bioethics Neuroscience 1 (4):47-49.
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  • Epicyclic popperism.Errol E. Harris - 1972 - British Journal for the Philosophy of Science 23 (1):55-67.
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  • Scientific Prediction in the Beginning of the “Historical Turn”: Stephen Toulmin and Thomas Kuhn.Wenceslao J. Gonzalez - 2013 - Open Journal of Philosophy 3 (2):351-357.
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  • Is it a revolution?Peter Godfrey-Smith - 2007 - Biology and Philosophy 22 (3):429-437.
    Jablonka and Lamb's claim that evolutionary biology is undergoing a ‘revolution’ is queried. But the very concept of revolutionary change has uncertain application to a field organized in the manner of contemporary biology. The explanatory primacy of sequence properties is also discussed.
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  • Theory choice, non-epistemic values, and machine learning.Ravit Dotan - 2020 - Synthese (11):1-21.
    I use a theorem from machine learning, called the “No Free Lunch” theorem to support the claim that non-epistemic values are essential to theory choice. I argue that NFL entails that predictive accuracy is insufficient to favor a given theory over others, and that NFL challenges our ability to give a purely epistemic justification for using other traditional epistemic virtues in theory choice. In addition, I argue that the natural way to overcome NFL’s challenge is to use non-epistemic values. If (...)
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  • Professionalism in Science: Competence, Autonomy, and Service.Hugh Desmond - 2020 - Science and Engineering Ethics 26 (3):1287-1313.
    Some of the most significant policy responses to cases of fraudulent and questionable conduct by scientists have been to strengthen professionalism among scientists, whether by codes of conduct, integrity boards, or mandatory research integrity training programs. Yet there has been little systematic discussion about what professionalism in scientific research should mean. In this paper I draw on the sociology of the professions and on data comparing codes of conduct in science to those in the professions, in order to examine what (...)
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  • The problem of Kuhnian rationality.Rogier de Langhe - 2012 - Philosophica 86 (3):11-31.
    According to Thomas Kuhn (1962/1970), science is characterized by two levels, one within and one between paradigms. The problem of Kuhnian rationality concerns the choice between paradigms, for which no rational basis appears to exist because this choice is inevitably circular to some extent. This is the main reason why Kuhn's view is perceived to glorify irrationality. (ibid. 199) I present two interpretations of the problem of Kuhnian rationality, one based on concepts (the neo-positivist interpretation) and one based on values. (...)
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  • Optimierung und ökonomisierung im kontext Von evolutionstheorie und phylogenetischer rekonstruktion.Klaus Bonik, Wolfgang Friedrich Gutmann & D. Stefan Peters - 1977 - Acta Biotheoretica 26 (2):75-119.
    The meaning of optimality and economy in phylogenetics and evolutionary biology is discussed.It can be shown that the prevailing concepts of optimality and economy are equivocal as they are not based on strict theoretical positions and as they have a variable meaning in different theoretical contexts. The ideas of optimality and economy can be considered to be identical with the expectation of a relatively simple order in a particular field of study. Although there exists no way of inferring one or (...)
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  • The Scientific Discovery of ‘Natural Capital’: The Production of Catalytic Antibodies.Michael Ben-Chaim - 2001 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 32 (3):413-433.
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  • The scientific discovery of 'natural capital': The production of catalytic antibodies.M. Ben-Chaim - 2001 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 32 (3):413-433.
    Modern science has undoubtedly become one the principal engines of economic growth, even though the epistemological status of scientific knowledge has been continuously contested. Leaving the philosophical problem of knowledge aside, this paper examines how scientific discovery contributes to the production of wealth. The analysis focuses on a recent achievement at the crossroads of chemistry, immunology and biotechnology: antibody catalysis. For this purpose, we develop a model of entrepreneurial work to explain how the discovery of natural products and processes generates (...)
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  • The logic of discovery a case study of hypertrophic cardiomyopathy.Howard Adelman & Allan Adelman - 1977 - Acta Biotheoretica 26 (1):39-58.
    This paper examines the research leading from the initial discovery of a disease in 1957 to its complete description twenty years later. The analysis reveals four stages in the discovery process and attempts to pinpoint the key characteristics of each of those stages. It is suggested that the early stages in the process have some of the characteristics depicted by T. H. Kuhn about the logic of discovery whereas the later stages exemplify the characteristics of the logic of discovery propounded (...)
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  • The Uses of Argument in Mathematics.Andrew Aberdein - 2005 - Argumentation 19 (3):287-301.
    Stephen Toulmin once observed that ”it has never been customary for philosophers to pay much attention to the rhetoric of mathematical debate’ [Toulmin et al., 1979, An Introduction to Reasoning, Macmillan, London, p. 89]. Might the application of Toulmin’s layout of arguments to mathematics remedy this oversight? Toulmin’s critics fault the layout as requiring so much abstraction as to permit incompatible reconstructions. Mathematical proofs may indeed be represented by fundamentally distinct layouts. However, cases of genuine conflict characteristically reflect an underlying (...)
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  • The philosophy of alternative logics.Andrew Aberdein & Stephen Read - 2009 - In Leila Haaparanta (ed.), The Development of Modern Logic. Oxford University Press. pp. 613-723.
    This chapter focuses on alternative logics. It discusses a hierarchy of logical reform. It presents case studies that illustrate particular aspects of the logical revisionism discussed in the chapter. The first case study is of intuitionistic logic. The second case study turns to quantum logic, a system proposed on empirical grounds as a resolution of the antinomies of quantum mechanics. The third case study is concerned with systems of relevance logic, which have been the subject of an especially detailed reform (...)
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  • Redefining revolutions.Andrew Aberdein - 2018 - In Moti Mizrahi (ed.), The Kuhnian image of science: Time for a decisive transformation? London: Rowman & Littlefield. pp. 133–154.
    In their account of theory change in logic, Aberdein and Read distinguish 'glorious' from 'inglorious' revolutions--only the former preserves all 'the key components of a theory' [1]. A widespread view, expressed in these terms, is that empirical science characteristically exhibits inglorious revolutions but that revolutions in mathematics are at most glorious [2]. Here are three possible responses: 0. Accept that empirical science and mathematics are methodologically discontinuous; 1. Argue that mathematics can exhibit inglorious revolutions; 2. Deny that inglorious revolutions are (...)
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  • The Origins of Species Concepts.John Simpson Wilkins - 2003 - Dissertation, University of Melbourne
    The longstanding species problem in biology has a history that suggests a solution, and that history is not the received history found in many texts written by biologists or philosophers. The notion of species as the division into subordinate groups of any generic predicate was the staple of logic from Aristotle through the middle ages until quite recently. However, the biological species concept during the same period was at first subtly and then overtly different. Unlike the logic sense, which relied (...)
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