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  1. Exaptation–A missing term in the science of form.Stephen Jay Gould & Elisabeth S. Vrba - 1998 - In David L. Hull & Michael Ruse (eds.), The philosophy of biology. New York: Oxford University Press.
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  • Conjectures and refutations: the growth of scientific knowledge.Karl Raimund Popper - 1968 - New York: Routledge.
    This classic remains one of Karl Popper's most wide-ranging and popular works, notable not only for its acute insight into the way scientific knowledge grows, but also for applying those insights to politics and to history.
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  • Popper's explications of ad hocness: Circularity, empirical content, and scientific practice.Greg Bamford - 1993 - British Journal for the Philosophy of Science 44 (2):335-355.
    Karl Popper defines an ad hoc hypothesis as one that is introduced to immunize a theory from some (or all) refutation but which cannot be tested independently. He has also attempted to explicate ad hocness in terms of certain other allegedly undesirable properties of hypotheses or of the explanations they would provide, but his account is confused and mistaken. The first such property is circularity, which is undesirable; the second such property is reduction in empirical content, which need not be. (...)
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  • Knowledge‐making distinctions in synthetic biology.Maureen A. O'Malley, Alexander Powell, Jonathan F. Davies & Jane Calvert - 2008 - Bioessays 30 (1):57-65.
    Synthetic biology is an increasingly high‐profile area of research that can be understood as encompassing three broad approaches towards the synthesis of living systems: DNA‐based device construction, genome‐driven cell engineering and protocell creation. Each approach is characterized by different aims, methods and constructs, in addition to a range of positions on intellectual property and regulatory regimes. We identify subtle but important differences between the schools in relation to their treatments of genetic determinism, cellular context and complexity. These distinctions tie into (...)
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  • Conjectures and Refutations: The Growth of Scientific Knowledge.Karl Raimund Popper - 1962 - London, England: Routledge.
    _Conjectures and Refutations_ is one of Karl Popper's most wide-ranging and popular works, notable not only for its acute insight into the way scientific knowledge grows, but also for applying those insights to politics and to history. It provides one of the clearest and most accessible statements of the fundamental idea that guided his work: not only our knowledge, but our aims and our standards, grow through an unending process of trial and error.
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  • Conjectures and Refutations: The Growth of Scientific Knowledge.Karl Raimund Popper - 1962 - London, England: Routledge.
    _Conjectures and Refutations_ is one of Karl Popper's most wide-ranging and popular works, notable not only for its acute insight into the way scientific knowledge grows, but also for applying those insights to politics and to history. It provides one of the clearest and most accessible statements of the fundamental idea that guided his work: not only our knowledge, but our aims and our standards, grow through an unending process of trial and error.
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  • Is Morality an Elegant Machine or a Kludge?Stephen Stich - 2006 - Journal of Cognition and Culture 6 (1-2):181-189.
    In a passage in A Theory of Justice, which has become increasingly influential in recent years, John Rawls (1971) noted an analogy between moral phi- losophy and grammar. Moral philosophy, or at least the first stage of moral philosophy, Rawls maintained, can be thought of as the attempt to describe our moral capacity – the capacity which underlies “the poten- tially infinite number and variety of [moral] judgments we are prepared..
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  • How scientists really think.Robert S. Root-Bernstein - 1989 - Perspectives in Biology and Medicine 32 (4):472-488.
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  • Conjectures and Refutations: The Growth of Scientific Knowledge.Mary Hesse - 1965 - Philosophical Quarterly 15 (61):372-374.
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  • Fundamental issues in systems biology.Maureen A. O'Malley & John Dupré - 2005 - Bioessays 27 (12):1270-1276.
    In the context of scientists' reflections on genomics, we examine some fundamental issues in the emerging postgenomic discipline of systems biology. Systems biology is best understood as consisting of two streams. One, which we shall call ‘pragmatic systems biology’, emphasises large‐scale molecular interactions; the other, which we shall refer to as ‘systems‐theoretic biology’, emphasises system principles. Both are committed to mathematical modelling, and both lack a clear account of what biological systems are. We discuss the underlying issues in identifying systems (...)
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  • Knowledge-Making Distinctions in Synthetic Biology.Maureen A. O'Malley, Alexander Powell, Jonathan F. Davies & Jane Calvert - 2008 - Bioessays 30 (1):57-65.
    Synthetic biology is an increasingly high-profile area of research that can be understood as encompassing three broad approaches towards the synthesis of living systems: DNA-based device construction, genome-driven cell engineering and protocell creation. Each approach is characterized by different aims, methods and constructs, in addition to a range of positions on intellectual property and regulatory regimes. We identify subtle but important differences between the schools in relation to their treatments of genetic determinism, cellular context and complexity. These distinctions tie into (...)
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  • "Verum-factum" and Practical Wisdom in the Early Writings of Giambattista Vico.Robert C. Miner - 1998 - Journal of the History of Ideas 59 (1):53.
    In lieu of an abstract, here is a brief excerpt of the content:Verum-factum and Practical Wisdom in the Early Writings of Giambattista VicoRobert C. MinerAs several contemporary writers have noted, Giambattista Vico defends the idea of practical knowledge, a type of knowledge that cannot be fully expressed by propositions and defies reductions to method. 1 The defense of practical knowledge, against Descartes and the rise of objectifying science, is most clearly articulated in a group of Vico’s early writings: the oration (...)
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  • Synthetic Biology and the Emergence of a Dual Meaning of Noise.Andrea Loettgers - 2009 - Biological Theory 4 (4):340-356.
    The question is discussed how noise gained a functional meaning in the context of biology. According to the common view, noise is considered a disturbance or perturbation. I analyze how this understanding changed and what kind of developments during the last 10 years contributed to the emergence of a new understanding of noise. Results gained during a field study in a synthetic biology laboratory show that the emergence of this new research discipline—its highly interdisciplinary character, its new technologies and novel (...)
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  • 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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  • II—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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  • Global Climate Modeling as Applied Science.William M. Goodwin - 2015 - Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 46 (2):339-350.
    In this paper I argue that the appropriate analogy for “understanding what makes simulation results reliable” in global climate modeling is not with scientific experimentation or measurement, but—at least in the case of the use of global climate models for policy development—with the applications of science in applied design problems. The prospects for using this analogy to argue for the quantitative reliability of GCMs are assessed and compared with other potential strategies.
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  • Global Climate Modeling as Applied Science.William M. Goodwin - 2015 - Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 46 (2):339-350.
    In this paper I argue that the appropriate analogy for “understanding what makes simulation results reliable” in Global Climate Modeling is not with scientific experimentation or measurement, but—at least in the case of the use of global climate models for policy development—with the applications of science in engineering design problems. The prospects for using this analogy to argue for the quantitative reliability of GCMs are assessed and compared with other potential strategies.
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  • A Philosopher’s Guide to Empirical Success.Malcolm R. Forster - 2007 - Philosophy of Science 74 (5):588-600.
    The simple question, what is empirical success? turns out to have a surprisingly complicated answer. We need to distinguish between meritorious fit and ‘fudged fit', which is akin to the distinction between prediction and accommodation. The final proposal is that empirical success emerges in a theory dependent way from the agreement of independent measurements of theoretically postulated quantities. Implications for realism and Bayesianism are discussed. ‡This paper was written when I was a visiting fellow at the Center for Philosophy of (...)
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  • The Character of Physical Law.Alex C. Michalos - 1967 - Philosophy of Science 34 (2):194-194.
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  • The Character of Physical Law.Richard Feynman - 1965 - MIT Press.
    The law of gravitation, an example of physical law The relation of mathematics to physics The great conservation principles Symmetry in physical law The distinction of past and future Probability and uncertainty: the quantum mechanical view of nature Seeking new laws.
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  • The Philosophy of Scientific Experimentation.Hans Radder (ed.) - 2003 - University of Pittsburgh Press.
    Since the late 1980s, the neglect of experiment by philosophers and historians of science has been replaced by a keen interest in the subject. In this volume, a number of prominent philosophers of experiment directly address basic theoretical questions, develop existing philosophical accounts, and offer novel perspectives on the subject, rather than rely exclusively on historical cases of experimental practice. Each essay examines one or more of six interconnected themes that run throughout the collection: the philosophical implications of actively and (...)
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  • Scientific Understanding: Philosophical Perspectives.Henk W. De Regt, Sabina Leonelli & Kai Eigner (eds.) - 2008 - University of Pittsburgh Press.
    The chapters in this book highlight the multifaceted nature of the process of scientific research.
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  • Re-engineering philosophy for limited beings: piecewise approximations to reality.William C. Wimsatt - 2007 - Cambridge, Mass.: Harvard University Press.
    This book offers a philosophy for error-prone humans trying to understand messy systems in the real world.
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  • Giambattista Vico.Timothy Costelloe - 2008 - Stanford Encyclopedia of Philosophy.
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  • The exaptive excellence of spandrels as a term and prototype.Stephen Jay Gould - unknown
    In 1979, Lewontin and I borrowed the archi- tectural term “spandrel” (using the pendentives of San Marco in Venice as an example) to designate the class of forms and spaces that arise as necessary byproducts of another decision in design, and not as adaptations for direct utility in them- selves. This proposal has generated a large literature featur- ing two critiques: (i) the terminological claim that the span- drels of San Marco are not true spandrels at all and (ii) the (...)
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  • Can a biologist fix a radio?—Or, what I learned while studying apoptosis.Yuri Lazebnik - 2002 - Cancer Cell 2:179-182.
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  • A Giant Step Towards Artificial Life?David Deamer - 2005 - Trends in Biotechnology 23 (7):336--338.
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  • Conjectures and Refutations.K. Popper - 1963 - Les Etudes Philosophiques 21 (3):431-434.
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  • Science without Laws. Model Systems, Cases, Exemplary Narratives.Angela N. H. Creager, Elizabeth Lunbeck & M. Norton Wise - 2008 - Journal of the History of Biology 41 (1):199-202.
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  • Disciplinary baptisms: a comparison of the naming stories of genetics, molecular biology, genomics, and systems biology.Alexander Powell, Maureen A. O. Malley, Staffan Muller-Wille, Jane Calvert & John Dupré - 2007 - History and Philosophy of the Life Sciences 29 (1):5.
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  • Re-Engineering Philosophy for Limited Beings. Piecewise Approximations to Reality.William C. Wimsatt - 2010 - Critica 42 (124):108-117.
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  • Disciplinary baptisms: A comparison of the naming stories of genetics, molecular biology, genomics and systems biology.Alexander Powell, Maureen A. O'Malley, Staffan Mueller-Wille, Jane Calvert & John Dupré - 2007 - History and Philosophy of the Life Sciences 29 (1):5-32.
    Understanding how scientific activities use naming stories to achieve disciplinary status is important not only for insight into the past, but for evaluating current claims that new disciplines are emerging. In order to gain a historical understanding of how new disciplines develop in relation to these baptismal narratives, we compare two recently formed disciplines, systems biology and genomics, with two earlier related life sciences, genetics and molecular biology. These four disciplines span the twentieth century, a period in which the processes (...)
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