Results for 'Scientists'

977 found
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  1.  14
    The social scientist at nazarene institutions.A. T. Scientist - 2011 - Telos: The Destination for Nazarene Higher Education 1.
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  2. The forty-fourth annual lecture series 2003–2004.Are Infants Little Scientists & Rethinking Domain-Specificity - 2003 - Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 34 (413).
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  3. Manufacturers can produce misleading scientific research to protect themselves.Union of Concerned Scientists - 2018 - In Eamon Doyle (ed.), The role of science in public policy. New York: Greenhaven Publishing.
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  4. Assen yossifov.Professionalization Of Scientists - 1979 - In János Farkas (ed.), Sociology of science and research. Budapest: Akadémiai Kiadó.
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  5. The fossil fuel industry is using their own research to fight the EPA.Union of Concerned Scientists - 2018 - In Eamon Doyle (ed.), The role of science in public policy. New York: Greenhaven Publishing.
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  6. David E. Alexander, Goodness, God, and Evil, Continuum, 2012, vi+ 155, price£ 60.00 hb. Joshua Alexander, Experimental Philosophy: An Introduction, Polity Press, 2012, vi+ 154, price£ 15.99 pb. Stephen C. Angle, Contemporary Confucian Political Philosophy, Polity Press. [REVIEW]Contemporary Religious Scientism - 2013 - Philosophical Investigations 36 (1).
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  7.  90
    Studying Human Behavior: How Scientists Investigate Aggression and Sexuality.Helen E. Longino - 2013 - University of Chicago Press.
    In Studying Human Behavior, Helen E. Longino enters into the complexities of human behavioral research, a domain still dominated by the age-old debate of “nature versus nurture.” Rather than supporting one side or another or attempting..
  8.  48
    Hidden concerns of sharing research data by low/middle-income country scientists.Louise Bezuidenhout & Ereck Chakauya - 2018 - Global Bioethics 29 (1):39-54.
    ABSTRACTThere has considerable interest in bringing low/middle-income countries scientists into discussions on Open Data – both as contributors and users. The establishment of in situ data sharing practices within LMIC research institutions is vital for the development of an Open Data landscape in the Global South. Nonetheless, many LMICs have significant challenges – resource provision, research support and extra-laboratory infrastructures. These low-resourced environments shape data sharing activities, but are rarely examined within Open Data discourse. In particular, little attention is (...)
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  9.  22
    Listening to Scientists—and Each Other.Michael K. Gusmano - 2020 - Hastings Center Report 50 (6):inside_front_cover-inside_front_.
    During the past two years, colleagues and I at The Hastings Center have worked on a project, funded by the John S. and James L. Knight Foundation, that seeks to improve the quality of public deliberation, particularly about science. Specifically, we seek to improve the public's capacity for civic learning, which is our term for the ability of people living in a democracy to learn at least the basics of complex policy issues, discuss them, and make civically responsible decisions about (...)
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  10.  13
    Medical Students as Social Scientists: Are There Role Conflicts?Robert J. Levine - 1980 - IRB: Ethics & Human Research 2 (1):6.
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  11. 1,500 scientists lift the lid on reproducibility.M. Baker - 2016 - Nature 533 (7604):452-454.
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  12.  48
    An Ethics of the System: Talking to Scientists About Research Integrity.Sarah R. Davies - 2019 - Science and Engineering Ethics 25 (4):1235-1253.
    Research integrity and misconduct have recently risen to public attention as policy issues. Concern has arisen about divergence between this policy discourse and the language and concerns of scientists. This interview study, carried out in Denmark with a cohort of highly internationalised natural scientists, explores how researchers talk about integrity and good science. It finds, first, that these scientists were largely unaware of the Danish Code of Conduct for Responsible Conduct of Research and indifferent towards the value (...)
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  13. The Fight Against Doubt: How to Bridge the Gap Between Scientists and the Public.Inmaculada de Melo-Martín & Kristen Intemann - 2018 - New York, NY, USA: Oxford University Press.
    The lack of public support for climate change policies and refusals to vaccinate children are just two alarming illustrations of the impacts of dissent about scientific claims. Dissent can lead to confusion, false beliefs, and widespread public doubt about highly justified scientific evidence. Even more dangerously, it has begun to corrode the very authority of scientific consensus and knowledge. Deployed aggressively and to political ends, some dissent can intimidate scientists, stymie research, and lead both the public and policymakers to (...)
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  14. 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 (...)
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  15.  47
    Nature of Science Contextualized: Studying Nature of Science with Scientists.Veli-Matti Vesterinen & Suvi Tala - 2015 - Science & Education 24 (4):435-457.
    Understanding nature of science is widely considered an important educational objective and views of NOS are closely linked to science teaching and learning. Thus there is a lively discussion about what understanding NOS means and how it is reached. As a result of analyses in educational, philosophical, sociological and historical research, a worldwide consensus about the content of NOS teaching is said to be reached. This consensus content is listed as a general statement of science, which students are supposed to (...)
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  16.  16
    Ethical preparedness in genomic medicine: how NHS clinical scientists navigate ethical issues.Kate Sahan, Kate Lyle, Helena Carley, Nina Hallowell, Michael J. Parker & Anneke M. Lucassen - 2024 - Journal of Medical Ethics 50 (8):517-522.
    Much has been published about the ethical issues encountered by clinicians in genetics/genomics, but those experienced by clinical laboratory scientists are less well described. Clinical laboratory scientists now frequently face navigating ethical problems in their work, but how they should be best supported to do this is underexplored. This lack of attention is also reflected in the ethics tools available to clinical laboratory scientists such as guidance and deliberative ethics forums, developed primarily to manage issues arising within (...)
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  17.  35
    Differences in Support for Retractions Based on Information Hazards Among Undergraduates and Federally Funded Scientists.Donald F. Sacco, August J. Namuth, Alicia L. Macchione & Mitch Brown - 2024 - Journal of Academic Ethics 22 (3):505-520.
    Retractions have traditionally been reserved for correcting the scientific record and discouraging research misconduct. Nonetheless, the potential for actual societal harm resulting from accurately reported published scientific findings, so-called information hazards, has been the subject of several recent article retractions. As these instances increase, the extent of support for such decisions among the scientific community and lay public remains unclear. Undergraduates (Study 1) and federally funded researchers (Study 2) reported their support for retraction decisions described as due to misconduct, honest (...)
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  18. Philosophy and the Spontaneous Philosophy of the Scientists & Other Essays.[author unknown] - 1993 - Science and Society 57 (2):240-243.
     
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  19.  1
    A Framework to Integrate Ethical, Legal, and Societal Aspects (ELSA) in the Development and Deployment of Human Performance Enhancement (HPE) Technologies and Applications in Military Contexts.Human Behaviour Marc Steen Koen Hogenelst Heleen Huijgen A. Tno, The Hague Collaboration, Human Performance The Netherlandsb Tno, The Netherlandsc Tno Soesterberg, Aerospace Warfare Surface, The NetherlAndsmarc Steen Works As A. Senior Research ScientIst At Tno The Hague, Value-Sensitive Design Human-Centred Design, Virtue Ethics HIs Mission is To Promote The Design Applied Ethics Of Technology, Flourish Koen Hogenelst Works As A. Senior Research Scientist at Tno ApplicAtion Of Technologies In Ways That Help To Create A. Just Society In Which People Can Live Well Together, His Research COncentrates on Measuring A. Background In Neuroscience, Cognitive Performance Improving Mental Health, Military Domains HIs Goal is To Align Experimental Research In Both The Civil, Field-Based Research Applied, Practical Use To Pave The Way For Implementation, Consultant At Tno Impact Heleen Huijgen Is A. Legal Scientist & StrAtegic Environment Her MIssion is To Create Legal Safeguards Fo Technologies - 2025 - Journal of Military Ethics 23 (3-4):219-244.
    Volume 23, Issue 3-4, November - December 2024, Page 219-244.
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  20.  19
    Mind the Gap: Formal Ethics Policies and Chemical Scientists’ Everyday Practices in Academia and Industry.Itai Vardi & Laurel Smith-Doerr - 2015 - Science, Technology, and Human Values 40 (2):176-198.
    Asymmetrical convergence is the increasing overlap between academic and industrial sectors, but with academia moving closer toward for-profit industrial norms than vice versa. Although this concept, developed by Kleinman and Vallas, is useful, processes of asymmetrical convergence in daily laboratory life are largely unexplored. Here, observations of three lab groups of chemical scientists in academic and industry contexts illustrate variation in interactions with ethics-related policies. Findings show more tension for academic science with business-based practices, such as the move toward (...)
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  21.  20
    Philosophy and the spontaneous philosophy of the scientists & other essays.Louis Althusser - 1990 - New York: Verso. Edited by Gregory Elliott.
    Theory, theoretical practice, and theoretical formation -- On theoretical work -- Philosophy and the spontaneous philosophy of the scientists (1967) -- Lenin and philosophy -- Is it simple to be a Marxist in philosophy? -- The transformation of philosophy -- Marxism today.
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  22. Merchants of Doubt: How a Handful of Scientists Obscured the Truth on Issues From Tobacco Smoke to Global Warming.Naomi Oreskes & Erik M. Conway - 2010 - Bloomsbury Press.
    The U.S. scientific community has long led the world in research on such areas as public health, environmental science, and issues affecting quality of life. These scientists have produced landmark studies on the dangers of DDT, tobacco smoke, acid rain, and global warming. But at the same time, a small yet potent subset of this community leads the world in vehement denial of these dangers. -/- Merchants of Doubt tells the story of how a loose-knit group of high-level (...) and scientific advisers, with deep connections in politics and industry, ran effective campaigns to mislead the public and deny well-established scientific knowledge over four decades. Remarkably, the same individuals surface repeatedly-some of the same figures who have claimed that the science of global warming is "not settled" denied the truth of studies linking smoking to lung cancer, coal smoke to acid rain, and CFCs to the ozone hole. "Doubt is our product," wrote one tobacco executive. These "experts" supplied it. -/- Naomi Oreskes and Erik M. Conway, historians of science, roll back the rug on this dark corner of the American scientific community, showing how ideology and corporate interests, aided by a too-compliant media, have skewed public understanding of some of the most pressing issues of our era. (shrink)
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  23.  52
    Facing the Pariah of Science: The Frankenstein Myth as a Social and Ethical Reference for Scientists.Peter Nagy, Ruth Wylie, Joey Eschrich & Ed Finn - 2020 - Science and Engineering Ethics 26 (2):737-759.
    Since its first publication in 1818, Mary Shelley’s Frankenstein; or, The Modern Prometheus has transcended genres and cultures to become a foundational myth about science and technology across a multitude of media forms and adaptations. Following in the footsteps of the brilliant yet troubled Victor Frankenstein, professionals and practitioners have been debating the scientific ethics of creating life for decades, never before have powerful tools for doing so been so widely available. This paper investigates how engaging with the Frankenstein myth (...)
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  24. From children’s literature to sustainability science, and young scientists for a more sustainable Earth.Quan-Hoang Vuong - 2020 - Journal of Sustainability Education 23 (4):3-14.
    This essay evolved from my keynote address for the plenary session of the ASEAN Conference for Young Scientists 2019 organized by the ASEAN Secretariat, Vietnam Ministry of Science and Technology—whose main theme is sustainability science—organized at Hanoi-based Phenikaa University. It has also benefited from my advisory work for the International Union for Conservation of Nature (IUCN).
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  25. Professors and their politics: The policy views of social scientists.Daniel B. Klein & Charlotta Stern - 2005 - Critical Review: A Journal of Politics and Society 17 (3-4):257-303.
    Academic social scientists overwhelmingly vote Democratic, and the Democratic hegemony has increased significantly since 1970. Moreover, the policy preferences of a large sample of the members of the scholarly associations in anthropology, economics, history, legal and political philosophy, political science, and sociology generally bear out conjectures about the correspondence of partisan identification with left/right ideal types; although across the board, both Democratic and Republican academics favor government action more than the ideal types might suggest. Variations in policy views among (...)
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  26.  72
    Theological questions to scientists.Wolfhart Pannenberg - 1981 - Zygon 16 (1):65-77.
  27.  23
    Epistemological undercurrents in scientists' reporting of research to teachers.George E. Glasson & Michael L. Bentley - 2000 - Science Education 84 (4):469-485.
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  28. Science, Respect for Nature, and Human Well-Being: Democratic Values and the Responsibilities of Scientists Today.Hugh Lacey - 2016 - Foundations of Science 21 (1):51-67.
    The central question addressed is: How should scientific research be conducted so as to ensure that nature is respected and the well being of everyone everywhere enhanced? After pointing to the importance of methodological pluralism for an acceptable answer and to obstacles posed by characterizing scientific methodology too narrowly, which are reinforced by the ‘commercial-scientific ethos’, two additional questions are considered: How might research, conducted in this way, have impact on—and depend on—strengthening democratic values and practices? And: What is thereby (...)
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  29.  17
    The threat and the glory: reflections on science and scientists.Peter Brian Medawar - 1990 - New York: Oxford University Press. Edited by David Pyke.
    Discusses the philosophy of science and the process of scientific discovery, and looks at ethical issues such as genetic engineering, prolonging life through technology, and the role of the physician.
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  30. The Limits of Democratizing Science: When Scientists Should Ignore the Public.S. Andrew Schroeder - 2022 - Philosophy of Science 89 (5):1034-1043.
    Scientists are frequently called upon to “democratize” science, by bringing the public into scientific research. One appealing point for public involvement concerns the nonepistemic values involved in science. Suppose, though, a scientist invites the public to participate in making such value-laden determinations but finds that the public holds values the scientist considers morally unacceptable. Does the argument for democratizing science commit the scientist to accepting the public’s objectionable values, or may she veto them? I argue that there are a (...)
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  31. How do Scientists Think? Capturing the Dynamics of Conceptual Change in Science.Nancy Nersessian - 1992 - In R. Giere & H. Feigl (eds.), Cognitive Models of Science. University of Minnesota Press. pp. 3--45.
  32.  13
    The Behavioral Economics of Biodiversity Conservation Scientists.Mark Vellend - 2019 - Philosophical Topics 47 (1):219-237.
    Values have a profound influence on the behaviour of all people, scientists included. Biodiversity is studied by ecologists, like myself, most of whom align with the “mission-driven” field of conservation biology. The mission involves the protection of biodiversity, and a set of contextual values including the beliefs that biological diversity and ecological complexity are good and have intrinsic value. This raises concerns that the scientific process might be influenced by biases toward outcomes that are aligned with these values. Retrospectively, (...)
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  33.  54
    “I Don’t Want to Do Anything Bad.” Perspectives on Scientific Responsibility: Results from a Qualitative Interview Study with Senior Scientists.Sebastian Wäscher, Nikola Biller-Andorno & Anna Deplazes-Zemp - 2020 - NanoEthics 14 (2):135-153.
    This paper presents scientists’ understanding of their roles in society and corresponding responsibilities. It discusses the researchers’ perspective against the background of the contemporary literature on scientific responsibility in the social sciences and philosophy and proposes a heuristic that improves the understanding of the complexity of scientific responsibility. The study is based on qualitative interviews with senior scientists. The presented results show what researchers themselves see as their responsibilities, how they assume them, and what challenges they perceive with (...)
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  34. De-Facto Science Policy in the Making: How Scientists Shape Science Policy and Why it Matters (or, Why STS and STP Scholars Should Socialize).Thaddeus R. Miller & Mark W. Neff - 2013 - Minerva 51 (3):295-315.
    Science and technology (S&T) policy studies has explored the relationship between the structure of scientific research and the attainment of desired outcomes. Due to the difficulty of measuring them directly, S&T policy scholars have traditionally equated “outcomes” with several proxies for evaluation, including economic impact, and academic output such as papers published and citations received. More recently, scholars have evaluated science policies through the lens of Public Value Mapping, which assesses scientific programs against societal values. Missing from these approaches is (...)
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  35.  11
    Response to commentaries: ethical preparedness in genomic medicine—how NHS clinical scientists navigate ethical issues.Kate Sahan & Kate Lyle - 2024 - Journal of Medical Ethics 50 (8):532-533.
    We read with great interest the commentaries submitted in response to our paper about clinical scientists and the role of ethical preparedness1. The responses raised some important themes that intersect with those discussed in our paper, and we are grateful for the opportunity to expand on them. Pruski2 highlights the importance of ethics education for clinical scientists, noting insufficient provision of such teaching within the clinical science profession. This gap means that scientists completing higher specialist training, who (...)
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  36.  30
    How Do Scientists Define Openness? Exploring the Relationship Between Open Science Policies and Research Practice.John Dupré, David Castle, Dagmara Weckowska, Sabina Leonelli & Nadine Levin - 2016 - Bulletin of Science, Technology and Society 36 (2):128-141.
    This article documents how biomedical researchers in the United Kingdom understand and enact the idea of “openness.” This is of particular interest to researchers and science policy worldwide in view of the recent adoption of pioneering policies on Open Science and Open Access by the U.K. government—policies whose impact on and implications for research practice are in need of urgent evaluation, so as to decide on their eventual implementation elsewhere. This study is based on 22 in-depth interviews with U.K. researchers (...)
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  37.  12
    Islamic perspectives on the principles of biomedical ethics: Muslim religious scholars and biomedical scientists in face-to-face dialogue with western bioethicists.Mohammed Ghaly (ed.) - 2016 - Hackensack, NJ: World Scientific, Imperial College Press.
    Islamic Perspectives on the Principles of Biomedical Ethics presents results from a pioneering seminar in 2013 between Muslim religious scholars, biomedical scientists, and Western bioethicists at the research Center for Islamic Legislation & Ethics, Qatar Faculty of Islamic Studies. By examining principle-based bioethics, the contributors to this volume addressed a number of key issues related to the future of the field. Discussion is based around the role of religion in bioethical reasoning, specifically from an Islamic perspective. Also considered is (...)
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  38.  13
    From Scarcity to Visibility: Gender Differences in the Careers of Doctoral Scientists and Engineers.J. Scott Long - 2001 - National Academies Press.
    Although women have made important inroads in science and engineering since the early 1970s, their progress in these fields has stalled over the past several years. This study looks at women in science and engineering careers in the 1970s and 1980s, documenting differences in career outcomes between men and women and between women of different races and ethnic backgrounds. The panel presents what is known about the following questions and explores their policy implications: In what sectors are female Ph.D.s employed? (...)
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  39.  62
    Why Can't We All Just Get Along? A Comment on Turner's Plea to Social Scientists and Bioethicists.Raymond de Vries - 2009 - Cambridge Quarterly of Healthcare Ethics 18 (1):43.
    Okay, Professor Turner is not Rodney King. He is not responding to bioethicists and social scientists running amuck, setting automobiles aflame, and pelting each other with rocks and broken bottles. He does not come right out and ask, “Why can't we all just get along?” But in its academic way, Turner's essay is an effort to negotiate a truce in the interdisciplinary squabbles that plague bioethics, a plea to move bioethics beyond the “misleading” and “unhelpful” “demarcation of disciplinary goals” (...)
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  40.  8
    Human heritable genome editing and its governance: views of scientists and governance professionals.R. Jean Cadigan, Margaret Waltz, John M. Conley, Rami M. Major, Elizabeth K. Branch, Eric T. Juengst & Michael A. Flatt - 2024 - New Genetics and Society 43 (1).
    Heritable human genome editing has garnered significant attention in scholarly and lay media, yet questions remain about whether, when, and how heritable genome editing ought to proceed. Drawing on interviews with scientists who use genome editing in their research and professionals engaged in human genome editing governance efforts, we examine their views on the permissibility of heritable genome editing and the governance strategies they see as necessary and realistic. For both issues, we found divergent views from respondents. We place (...)
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  41.  37
    Promoting an “Auteur Theory” for Young Scientists: Preserving Excitement and Creativity ….Arshad Desai & Suckjoon Jun - 2018 - Bioessays 40 (11):1800147.
  42. The travels of an educational theorist among behavioral scientists.Kenneth D. Benne - 1959 - Philosophy of Education:111.
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  43.  42
    On the hazards of whistleblowers and on some problems of young biomedical scientists in our time.John T. Edsall - 1995 - Science and Engineering Ethics 1 (4):329-340.
    This paper examines two different, but closely related, classes of problems. The first part deals with whistleblowers, and the difficulties and dangers that they have often faced, although their actions, in the rare cases where they become necessary, are indispensable for the maintenance of honest science. The problems are illustrated by discussion of several specific cases from 1960 to 1990. The second part deals with problems that face many young scientists today, and the stresses to which they are exposed (...)
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  44.  16
    The Sisyphean Fate of History of Science Unmoved Scientists, Unresponsive Bureaucrats, Unimpressed Politicians.Kostas Gavroglu - 2022 - Centaurus 64 (4):809-828.
    A number of issues related to the challenges menacing the future of history of science are discussed. It has become increasingly more difficult to engage scientists in the ways historians of science deal with their subjects, while at the same time the implicit historiography of science textbooks has created an ideology among scientists that makes such engagement even more strenuous. An additional complication is the deep belief of many scientists in anachronism. Another threatening prospect is the instrumentalist (...)
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  45.  56
    Will the real scientists please stand up? dead ends and live issues in the explanation of scientific knowledge.Paul A. Roth - 1996 - Studies in History and Philosophy of Science Part A 27 (1):43-68.
  46.  37
    Essay Review: Hustlers and Patrons of Science (Millikan's School: A History of the California Institute of Technology, Partners in Science: Foundations and Natural Scientists 1900–1945).Jack Morrell - 1993 - History of Science 31 (1):65-82.
    Millikan's School: A History of the California Institute of Technology. GoodsteinJudith R. Pp. 317. £17.95. Partners in Science: Foundations and Natural Scientists 1900–1945. KohlerRobert E. . Pp. xvi + 415. £27.95.
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  47.  29
    Science in the looking glass: what do scientists really know?Edward Brian Davies - 2003 - New York: Oxford University Press.
    In this wide-ranging book, Brian Davies discusses the basis for scientists' claims to knowledge about the world. He looks at science historically, emphasizing not only the achievements of scientists from Galileo onwards, but also their mistakes. He rejects the claim that all scientific knowledge is provisional, by citing examples from chemistry, biology and geology. A major feature of the book is its defense of the view that mathematics was invented rather than discovered. A large number of examples are (...)
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  48.  4
    Enhancing Animals is “Still Genetics”: Perspectives of Genome Scientists and Policymakers on Animal and Human Enhancement.Rebecca L. Walker, Zachary Ferguson, Logan Mitchell & Margaret Waltz - forthcoming - AJOB Empirical Bioethics.
    Background: Nonhuman animals are regularly enhanced genomically with CRISPR and other gene editing tools as scientists aim at better models for biomedical research, more tractable agricultural animals, or animals that are otherwise well suited to a defined purpose. This study investigated how genome editors and policymakers perceived ethical or policy benefits and drawbacks for animal enhancement and how perceived benefits and drawbacks are alike, or differ from, those for human genome editing. Methods: We identified scientists through relevant literature (...)
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  49.  39
    Second-Guessing Scientists and Engineers: Post Hoc Criticism and the Reform of Practice in Green Chemistry and Engineering.William T. Lynch - 2015 - Science and Engineering Ethics 21 (5):1217-1240.
    The article examines and extends work bringing together engineering ethics and Science and Technology Studies, which had built upon Diane Vaughan’s analysis of the Challenger shuttle accident as a test case. Reconsidering the use of her term “normalization of deviance,” the article argues for a middle path between moralizing against and excusing away engineering practices contributing to engineering disaster. To explore an illustrative pedagogical case and to suggest avenues for constructive research developing this middle path, it examines the emergence of (...)
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  50.  41
    The AI Carbon Footprint and Responsibilities of AI Scientists.Guglielmo Tamburrini - 2022 - Philosophies 7 (1):4.
    This article examines ethical implications of the growing AI carbon footprint, focusing on the fair distribution of prospective responsibilities among groups of involved actors. First, major groups of involved actors are identified, including AI scientists, AI industry, and AI infrastructure providers, from datacenters to electrical energy suppliers. Second, responsibilities of AI scientists concerning climate warming mitigation actions are disentangled from responsibilities of other involved actors. Third, to implement these responsibilities nudging interventions are suggested, leveraging on AI competitive games (...)
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