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  1. Handling Anomalous Data in the Lab: Students’ Perspectives on Deleting and Discarding.Mikkel Willum Johansen & Frederik Voetmann Christiansen - 2020 - Science and Engineering Ethics 26 (2):1107-1128.
    This paper presents and discusses empirical results from a survey about the research practice of Danish chemistry students, with a main focus on the question of anomalous data. It seeks to investigate how such data is handled by students, with special attention to so-called ‘questionable research practices’ where anomalous data are simply deleted or discarded. This question of QRPs is of particular importance as the educational practices students experience may influence how they act in their future professional careers, for instance (...)
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  • The limits of replicability.Stephan Guttinger - 2020 - European Journal for Philosophy of Science 10 (2):1-17.
    Discussions about a replicability crisis in science have been driven by the normative claim that all of science should be replicable and the empirical claim that most of it isn’t. Recently, such crisis talk has been challenged by a new localism, which argues a) that serious problems with replicability are not a general occurrence in science and b) that replicability itself should not be treated as a universal standard. The goal of this article is to introduce this emerging strand of (...)
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  • Life Sciences for Philosophers and Philosophy for Life Scientists: What Should We Teach?Giovanni Boniolo & Raffaella Campaner - 2020 - Biological Theory 15 (1):1-11.
    Following recent debate on the relations between philosophy of science and the sciences, we wish to draw attention to some actual ways of training both young philosophers of science and young life scientists and clinicians. First, we recall a successful case of training philosophers of the life sciences in a strictly scientific environment. Second, after a brief review of the reasons why life scientists and clinicians are currently asking for more ethics, more methodology of science, and more philosophy of science (...)
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  • Science After the Practice Turn in the Philosophy, History, and Social Studies of Science.Lena Soler, Sjoerd Zwart, Michael Lynch & Vincent Israel-Jost (eds.) - 2014 - New York: Routledge.
    In the 1980s, philosophical, historical and social studies of science underwent a change which later evolved into a turn to practice. Analysts of science were asked to pay attention to scientific practices in meticulous detail and along multiple dimensions, including the material, social and psychological. Following this turn, the interest in scientific practices continued to increase and had an indelible influence in the various fields of science studies. No doubt, the practice turn changed our conceptions and approaches of science, but (...)
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  • Re-Thinking Reproducibility as a Criterion for Research Quality.Sabina Leonelli - 2018 - Research in the History of Economic Thought and Methodology 36 (B):129-146.
    A heated debate surrounds the significance of reproducibility as an indicator for research quality and reliability, with many commentators linking a "crisis of reproducibility" to the rise of fraudulent, careless and unreliable practices of knowledge production. Through the analysis of discourse and practices across research fields, I point out that reproducibility is not only interpreted in different ways, but also serves a variety of epistemic functions depending on the research at hand. Given such variation, I argue that the uncritical pursuit (...)
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  • From Science Studies to Scientific Literacy: A View from the Classroom.Douglas Allchin - 2014 - Science & Education 23 (9):1911-1932.
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  • Why Implementing History and Philosophy in School Science Education is a Challenge: An Analysis of Obstacles.Dietmar Höttecke & Cibelle Celestino Silva - 2011 - Science & Education 20 (3-4):293-316.
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  • Idealization and the Aims of Science.Angela Potochnik - 2017 - Chicago: University of Chicago Press.
    Science is the study of our world, as it is in its messy reality. Nonetheless, science requires idealization to function—if we are to attempt to understand the world, we have to find ways to reduce its complexity. Idealization and the Aims of Science shows just how crucial idealization is to science and why it matters. Beginning with the acknowledgment of our status as limited human agents trying to make sense of an exceedingly complex world, Angela Potochnik moves on to explain (...)
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  • History and Philosophy of Science: Intimate Relationship or Marriage of Convenience? [REVIEW]Ronald N. Giere - 1973 - British Journal for the Philosophy of Science 24 (3):282-297.
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  • Failure: Why Science is so Successful.Stuart Firestein - 2015 - Oxford University Press USA.
    "The pursuit of science by professional scientists every day bears less and less resemblance to the perception of science by the general public. It is not the rule-based, methodical system for accumulating facts that dominates the public view. Rather it is the idiosyncratic, often bumbling search for understanding in mostly uncharted places. It is full of wrong turns, cul-de-sacs, mistaken identities, false findings, errors of fact and judgment-and the occasional remarkable success. The widespread but distorted view of science as infallible (...)
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  • Is Water H2O? Evidence, Realism and Pluralism.Hasok Chang - 2012 - Boston Studies in the Philosophy and History of Science.
    This book exhibits deep philosophical quandaries and intricacies of the historical development of science lying behind a simple and fundamental item of common sense in modern science, namely the composition of water as H2O. Three main phases of development are critically re-examined, covering the historical period from the 1760s to the 1860s: the Chemical Revolution, early electrochemistry, and early atomic chemistry. In each case, the author concludes that the empirical evidence available at the time was not decisive in settling the (...)
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  • Understanding Scientific Reasoning.Ronald N. Giere, John Bickle & Robert F. Mauldin - 2006 - Fort Worth, TX, USA: Wadsworth Publishing Company.
    UNDERSTANDING SCIENTIFIC REASONING develops critical reasoning skills and guides students in the improvement of their scientific and technological literacy. The authors teach students how to understand and critically evaluate the scientific information they encounter in both textbooks and the popular media. With its focus on scientific pedagogy, UNDERSTANDING SCIENTIFIC REASONING helps students learn how to examine scientific reports with a reasonable degree of sophistication. The book also explains how to reason through case studies using the same informal logic skills employed (...)
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  • The Dilemma of Case Studies Resolved: The Virtues of Using Case Studies in the History and Philosophy of Science.Richard M. Burian - 2001 - Perspectives on Science 9 (4):383-404.
    Philosophers of science turned to historical case studies in part in response to Thomas Kuhn's insistence that such studies can transform the philosophy of science. In this issue Joseph Pitt argues that the power of case studies to instruct us about scientific methodology and epistemology depends on prior philosophical commitments, without which case studies are not philosophically useful. Here I reply to Pitt, demonstrating that case studies, properly deployed, illustrate styles of scientific work and modes of argumentation that are not (...)
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  • Ignorance: How It Drives Science.Stuart Firestein - 2012 - Oxford University Press.
    Machine generated contents note: -- Chapter 1. A Short View of Ignorance -- Chapter 2. Finding Out -- Chapter 3. Limits, Uncertainty, Impossibility, and Other Minor Problems -- Chapter 4. Unpredicting -- Chapter 5. The Quality of Ignorance -- Chapter 6. Ignorance in Action: Case Histories -- Chapter 7. Ignorance beyond the Lab.
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  • Science in action: how to follow scientists and engineers through society.Bruno Latour - 1987 - Cambridge: Harvard University Press.
    In this book Bruno Latour brings together these different approaches to provide a lively and challenging analysis of science, demonstrating how social context..
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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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  • Beyond case-studies: History as philosophy.Hasok Chang - unknown
    What can we conclude from a mere handful of case studies? The field of HPS has witnessed too many hasty philosophical generalizations based on a small number of conveniently chosen case studies. One might even speculate that dissatisfaction with such methodological shoddiness contributed decisively to a widespread disillusionment with the whole HPS enterprise. Without specifying clear mechanisms for history-philosophy interaction, we are condemned to either making unwarranted generalizations from history, or writing entirely "local" histories with no bearing on an overall (...)
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  • The dilemma of case studies: Toward a heraclitian philosophy of science.Joseph C. Pitt - 2001 - Perspectives on Science 9 (4):373-382.
    What do appeals to case studies accomplish? Consider the dilemma: On the one hand, if the case is selected because it exemplifies the philosophical point, then it is not clear that the historical data hasn't been manipulated to fit the point. On the other hand, if one starts with a case study, it is not clear where to go from there—for it is unreasonable to generalize from one case or even two or three.
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  • Risk, Uncertainty and Precaution in Science: The Threshold of the Toxicological Concern Approach in Food Toxicology.Karim Bschir - 2017 - Science and Engineering Ethics 23 (2):489-508.
    Environmental risk assessment is often affected by severe uncertainty. The frequently invoked precautionary principle helps to guide risk assessment and decision-making in the face of scientific uncertainty. In many contexts, however, uncertainties play a role not only in the application of scientific models but also in their development. Building on recent literature in the philosophy of science, this paper argues that precaution should be exercised at the stage when tools for risk assessment are developed as well as when they are (...)
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  • The benefits of acquiring interactional expertise: Why (some) philosophers of science should engage scientific communities.Kathryn S. Plaisance - 2020 - Studies in History and Philosophy of Science Part A 83:53-62.
    Philosophers of science are increasingly arguing for and addressing the need to do work that is socially and scientifically engaged. However, we currently lack well-developed frameworks for thinking about how we should engage other expert communities and what the epistemic benefits are of doing so. In this paper, I draw on Collins and Evans' concept of ‘interactional expertise’ – the ability to speak the language of a discipline in the absence of an ability to practice – to consider the epistemic (...)
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  • Clarifying interactional and contributory expertise.Mads Goddiksen - 2014 - Studies in History and Philosophy of Science Part A 47:111-117.
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  • Nature of Science in the Science Curriculum: Origin, Development, Implications and Shifting Emphases.Derek Hodson - 2014 - In Michael R. Matthews (ed.), International Handbook of Research in History, Philosophy and Science Teaching. Springer. pp. 911-970.
    This chapter briefly traces the history of nature of science (NOS) orientations in science education, notes some differences in the way NOS is defined and in arguments used to justify its inclusion in the school science curriculum and acknowledges the centrality of NOS to recent curriculum and research initiatives based on scientific argumentation, modelling and consideration of socioscientific issues (SSI). Some critical scrutiny is directed towards the so-called consensus view of NOS and whether it adequately and appropriately represents the diversity (...)
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  • Introduction: philosophy of science in practice. [REVIEW]Rachel Ankeny, Hasok Chang, Marcel Boumans & Mieke Boon - 2011 - European Journal for Philosophy of Science 1 (3):303-307.
    Introduction: philosophy of science in practice Content Type Journal Article Category Editorial Article Pages 303-307 DOI 10.1007/s13194-011-0036-4 Authors Rachel Ankeny, School of History & Politics, University of Adelaide, Napier Building, The University of Adelaide, Adelaide, SA 5005, Australia Hasok Chang, Department of History and Philosophy of Science, University of Cambridge, Free School Lane, Cambridge, CB2 3RH UK Marcel Boumans, Faculty of Economics and Business, University of Amsterdam, Valckenierstraat 65-67, 1018 XE Amsterdam, The Netherlands Mieke Boon, Department of Philosophy, University of (...)
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  • A Guide to Field Philosophy: Case Studies and Practical Strategies.Evelyn Brister & Robert Frodeman (eds.) - 2020 - New York: Routledge.
    Philosophers increasingly engage in practical work with other disciplines and the world at large. This volume draws together the lessons learned from this work--including philosophers' contributions to scientific research projects, consultations on matters of policy, and expertise provided to government agencies and non-profits--on how to effectively practice philosophy. Its 22 case studies are organized into five sections: I Collaboration and Communication II Policymaking and the Public Sphere III Fieldwork in the Academy IV Fieldwork in the Professions V Changing Philosophical Practice (...)
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  • Reductionism and the Relation Between Chemistry and Physics.Hasok Chang - 2015 - In Ana Simões, Jürgen Renn & Theodore Arabatzis (eds.), Relocating the History of Science: Essays in Honor of Kostas Gavroglu. Springer Verlag.
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  • More than a marriage of convenience: On the inextricability of history and philosophy of science.Richard M. Burian - 1977 - Philosophy of Science 44 (1):1-42.
    History of science, it has been argued, has benefited philosophers of science primarily by forcing them into greater contact with "real science." In this paper I argue that additional major benefits arise from the importance of specifically historical considerations within philosophy of science. Loci for specifically historical investigations include: (1) making and evaluating rational reconstructions of particular theories and explanations, (2) estimating the degree of support earned by particular theories and theoretical claims, and (3) evaluating proposed philosophical norms for the (...)
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  • Philosophy of Science for Biologists.Kostas Kampourakis & Tobias Uller (eds.) - 2019 - New York, NY: Cambridge University Press.
    Biologists rely on theories, apply models and construct explanations, but rarely reflect on their nature and structure. This book introduces key topics in philosophy of science to provide the required philosophical background for this kind of reflection, which is an important part of all aspects of research and communication in biology. It concisely and accessibly addresses fundamental questions such as: Why should biologists care about philosophy of science? How do concepts contribute to scientific advancement? What is the nature of scientific (...)
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  • The History of Chemistry in Chemical Education.John C. Powers - 2020 - Isis 111 (3):576-581.
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  • Teaching philosophy of science to scientists: why, what and how.Till Grüne-Yanoff - 2014 - European Journal for Philosophy of Science 4 (1):115-134.
    This paper provides arguments to philosophers, scientists, administrators and students for why science students should be instructed in a mandatory, custom-designed, interdisciplinary course in the philosophy of science. The argument begins by diagnosing that most science students are taught only conventional methodology: a fixed set of methods whose justification is rarely addressed. It proceeds by identifying seven benefits that scientists incur from going beyond these conventions and from acquiring abilities to analyse and evaluate justifications of scientific methods. It concludes that (...)
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  • Philosophy and the curriculum.Israel Scheffler - 1992 - Science & Education 1 (4):385-394.
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