Results for 'G. Glymour'

990 found
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  1. On converging to the truth and nothing but the truth.K. Kelly & G. Glymour - forthcoming - Philosophy of Science.
     
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  2.  24
    Causal Modeling, Explanation and Severe Testing.Clark Glymour, Deborah G. Mayo & Aris Spanos - 2010 - In Deborah G. Mayo & Aris Spanos (eds.), Error and Inference: Recent Exchanges on Experimental Reasoning, Reliability, and the Objectivity and Rationality of Science. Cambridge University Press. pp. 331-375.
  3.  33
    Introduction to the Philosophy of Science.Merrilee H. Salmon, John Earman, Clark Glymour & James G. Lennox (eds.) - 1992 - Hackett Publishing Company.
    A reprint of the Prentice-Hall edition of 1992. Prepared by nine distinguished philosophers and historians of science, this thoughtful reader represents a cooperative effort to provide an introduction to the philosophy of science focused on cultivating an understanding of both the workings of science and its historical and social context. Selections range from discussions of topics in general methodology to a sampling of foundational problems in various physical, biological, behavioral, and social sciences. Each chapter contains a list of suggested readings (...)
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  4.  15
    Confirmation and Chaos.Michael Friedman, Robert DiSalle, J. D. Trout, Shaun Nichols, Maralee Harrell, Clark Glymour, Carl G. Wagner, Kent W. Staley, Jesús P. Zamora Bonilla & Frederick M. Kronz - 2002 - Philosophy of Science 69 (2):256-265.
    Recently, Rueger and Sharp (1996) and Koperski (1998) have been concerned to show that certain procedural accounts of model confirmation are compromised by non-linear dynamics. We suggest that the issues raised are better approached by considering whether chaotic data analysis methods allow for reliable inference from data. We provide a framework and an example of this approach.
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  5.  39
    An Evaluation of Machine-Learning Methods for Predicting Pneumonia Mortality.Gregory F. Cooper, Constantin F. Aliferis, Richard Ambrosino, John Aronis, Bruce G. Buchanon, Richard Caruana, Michael J. Fine, Clark Glymour, Geoffrey Gordon, Barbara H. Hanusa, Janine E. Janosky, Christopher Meek, Tom Mitchell, Thomas Richardson & Peter Spirtes - unknown
    This paper describes the application of eight statistical and machine-learning methods to derive computer models for predicting mortality of hospital patients with pneumonia from their findings at initial presentation. The eight models were each constructed based on 9847 patient cases and they were each evaluated on 4352 additional cases. The primary evaluation metric was the error in predicted survival as a function of the fraction of patients predicted to survive. This metric is useful in assessing a model’s potential to assist (...)
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  6.  38
    Measuring the Biases that Matter: The Ethical and Causal Foundations for Measures of Fairness in Algorithms.Jonathan Herington & Bruce Glymour - 2019 - Proceedings of the Conference on Fairness, Accountability, and Transparency 2019:269-278.
    Measures of algorithmic bias can be roughly classified into four categories, distinguished by the conditional probabilistic dependencies to which they are sensitive. First, measures of "procedural bias" diagnose bias when the score returned by an algorithm is probabilistically dependent on a sensitive class variable (e.g. race or sex). Second, measures of "outcome bias" capture probabilistic dependence between class variables and the outcome for each subject (e.g. parole granted or loan denied). Third, measures of "behavior-relative error bias" capture probabilistic dependence between (...)
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  7. Determinism, ignorance, and quantum mechanics.Clark Glymour - 1971 - Journal of Philosophy 68 (21):744-751.
    is every bit as intelligible and philosophically respectable as many other doctrines currently in favor, e.g., the doctrine that mental events are identical with brain events; the attempt to give a linguistic construal of this latter doctrine meets many of the same sorts of difficulties encountered above (see Hempel, op. cit.). Secondly, I think that evidence for universal determinism may not, as a matter of fact, be so hard to come by as one might imagine. It is a striking fact (...)
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  8.  46
    Having the Right Tool: Causal Graphs in Teaching Research Design.Clark Glymour - unknown
    A general principle for good pedagogic strategy is this: other things equal, make the essential principles of the subject explicit rather than tacit. We think that this principle is routinely violated in conventional instruction in statistics. Even though most of the early history of probability theory has been driven by causal considerations, the terms “cause” and “causation” have practically disappeared from statistics textbooks. Statistics curricula guide students away from the concept of causality, into remembering perhaps the cliche disclaimer “correlation does (...)
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  9.  10
    Explanation and testing exchanges with Clark Glymour.Deborah G. Mayo - 2009 - In Deborah G. Mayo & Aris Spanos (eds.), Error and Inference: Recent Exchanges on Experimental Reasoning, Reliability, and the Objectivity and Rationality of Science. Cambridge University Press. pp. 351.
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  10. Novelty and the 1919 eclipse experiments.G. R. - 2003 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 34 (1):107-129.
    In her 1996 book, Error and the Growth of Experimental Knowledge, Deborah Mayo argues that use- (or heuristic) novelty is not a criterion we need to consider in assessing the evidential value of observations. Using the notion of a ''severe'' test, Mayo claims that such novelty is valuable only when it leads to severity, and never otherwise. To illustrate her view, she examines the historical case involving the famous 1919 British eclipse expeditions that generated observations supporting Einstein's theory of gravitation (...)
     
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  11.  32
    Experimental tests of the sum rule.M. L. G. Redhead - 1981 - Philosophy of Science 48 (1):50-64.
    Recent discussions of experimental tests of the Sum Rule have been carried out in the context of the special circumstances attending the Cross-Ramsey experiment. A more general analysis of possible tests is presented. A technical mistake of Fine and Glymour concerned with a misunderstanding of the physics of the Cross-Ramsey experiment is explained and a detailed analysis of a thought experiment based on the Einstein-Podolsky-Rosen wave function is given. It is concluded, in agreement with Fine, that scattering experiments do (...)
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  12.  77
    Novelty and the 1919 Eclipse Experiments.Robert G. Hudson - 2003 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 34 (1):107-129.
    In her 1996 book, Error and the Growth of Experimental Knowledge, Deborah Mayo argues that use- (or heuristic) novelty is not a criterion we need to consider in assessing the evidential value of observations. Using the notion of a “severe” test, Mayo claims that such novelty is valuable only when it leads to severity, and never otherwise. To illustrate her view, she examines the historical case involving the famous 1919 British eclipse expeditions that generated observations supporting Einstein's theory of gravitation (...)
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  13.  83
    Wayward Modeling: Population Genetics and Natural Selection.Bruce Glymour - 2006 - Philosophy of Science 73 (4):369-389.
    Since the introduction of mathematical population genetics, its machinery has shaped our fundamental understanding of natural selection. Selection is taken to occur when differential fitnesses produce differential rates of reproductive success, where fitnesses are understood as parameters in a population genetics model. To understand selection is to understand what these parameter values measure and how differences in them lead to frequency changes. I argue that this traditional view is mistaken. The descriptions of natural selection rendered by population genetics models are (...)
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  14. Why I am not a Bayesian.Clark Glymour - 2010 - In Antony Eagle (ed.), Philosophy of Probability: Contemporary Readings. New York: Routledge.
     
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  15. Causation, Prediction, and Search.Peter Spirtes, Clark Glymour, Scheines N. & Richard - 1993 - Mit Press: Cambridge.
  16. Conditioning and intervening.Christopher Meek & Clark Glymour - 1994 - British Journal for the Philosophy of Science 45 (4):1001-1021.
    We consider the dispute between causal decision theorists and evidential decision theorists over Newcomb-like problems. We introduce a framework relating causation and directed graphs developed by Spirtes et al. (1993) and evaluate several arguments in this context. We argue that much of the debate between the two camps is misplaced; the disputes turn on the distinction between conditioning on an event E as against conditioning on an event I which is an action to bring about E. We give the essential (...)
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  17.  68
    Review: C ause and Chance: Causation in an Indeterministic World.Clark Glymour - 2005 - Mind 114 (455):728-733.
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  18. The Catesian theatre stance.Glymour Bruce - 1992 - Behavioral and Brain Sciences 15:209-211.
     
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  19. Intention.G. E. M. Anscombe - 1957 - Cambridge, Mass.: Harvard University Press.
    This is a welcome reprint of a book that continues to grow in importance.
  20. Theory and Evidence.Clark N. Glymour - 1980 - Princeton University Press.
  21.  17
    Android Epistemology.Kenneth M. Ford, Clark N. Glymour & Patrick J. Hayes (eds.) - 1994 - MIT Press.
  22. Theory and Evidence.Clark Glymour - 1981 - Philosophy of Science 48 (3):498-500.
     
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  23.  96
    Actual causation: a stone soup essay.Clark Glymour David Danks, Bruce Glymour Frederick Eberhardt, Joseph Ramsey Richard Scheines, Peter Spirtes Choh Man Teng & Zhang Jiji - 2010 - Synthese 175 (2):169--192.
    We argue that current discussions of criteria for actual causation are ill-posed in several respects. (1) The methodology of current discussions is by induction from intuitions about an infinitesimal fraction of the possible examples and counterexamples; (2) cases with larger numbers of causes generate novel puzzles; (3) “neuron” and causal Bayes net diagrams are, as deployed in discussions of actual causation, almost always ambiguous; (4) actual causation is (intuitively) relative to an initial system state since state changes are relevant, but (...)
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  24.  80
    Linearity Properties of Bayes Nets with Binary Variables.David Danks & Clark Glymour - unknown
    It is “well known” that in linear models: (1) testable constraints on the marginal distribution of observed variables distinguish certain cases in which an unobserved cause jointly influences several observed variables; (2) the technique of “instrumental variables” sometimes permits an estimation of the influence of one variable on another even when the association between the variables may be confounded by unobserved common causes; (3) the association (or conditional probability distribution of one variable given another) of two variables connected by a (...)
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  25.  43
    What Is Going on Inside the Arrows? Discovering the Hidden Springs in Causal Models.Alexander Murray-Watters & Clark Glymour - 2015 - Philosophy of Science 82 (4):556-586.
    Using Gebharter’s representation, we consider aspects of the problem of discovering the structure of unmeasured submechanisms when the variables in those submechanisms have not been measured. Exploiting an early insight of Sober’s, we provide a correct algorithm for identifying latent, endogenous structure—submechanisms—for a restricted class of structures. The algorithm can be merged with other methods for discovering causal relations among unmeasured variables, and feedback relations between measured variables and unobserved causes can sometimes be learned.
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  26. Discovering Causal Structure: Artificial Intelligence, Philosophy of Science, and Statistical Modeling.Clark Glymour, Richard Scheines, Peter Spirtes & Kevin Kelly - 1987 - Academic Press.
    Clark Glymour, Richard Scheines, Peter Spirtes and Kevin Kelly. Discovering Causal Structure: Artifical Intelligence, Philosophy of Science and Statistical Modeling.
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  27. Theory and Evidence.Clark Glymour - 1980 - Ethics 93 (3):613-615.
     
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  28. Theory and Evidence.Clark Glymour - 1982 - Erkenntnis 18 (1):105-130.
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  29.  52
    Clark Glymour’s responses to the contributions to the Synthese special issue “Causation, probability, and truth: the philosophy of Clark Glymour”.Clark Glymour - 2016 - Synthese 193 (4):1251-1285.
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  30.  65
    Automated Remote Sensing with Near Infrared Reflectance Spectra: Carbonate Recognition.Joseph Ramsey, Peter Spirtes & Clark Glymour - unknown
    Reflectance spectroscopy is a standard tool for studying the mineral composition of rock and soil samples and for remote sensing of terrestrial and extraterrestrial surfaces. We describe research on automated methods of mineral identification from reflectance spectra and give evidence that a simple algorithm, adapted from a well-known search procedure for Bayes nets, identifies the most frequently occurring classes of carbonates with reliability equal to or greater than that of human experts. We compare the reliability of the procedure to the (...)
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  31. Theory and Evidence.Clark Glymour - 1981 - British Journal for the Philosophy of Science 32 (3):314-318.
     
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  32.  68
    A Mind Is a Terrible Thing to Waste. [REVIEW]Clark Glymour - 1999 - Philosophy of Science 66 (3):455 - 471.
    Jaegwon Kim's Mind in a Physical World is an argument about mental causation that provides both a metaphysical theory and a lucid commentary on contemporary philosophical views. While I strongly recommend Kim's book to anyone interested in the subject, my endorsement is not unconditional, because I cannot make the same recomendation of the subject itself. Considering arguments of Davidson, Putnam, Burge, Block, and Kim himself, I conclude that the subject turns on a variety of implausible but received arguments, and that (...)
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  33.  10
    Discussion of Causal Diagrams for Empirical Research by J. Pearl.Stephen E. Fienberg, Clark Glymour & Peter Spirtes - unknown
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  34.  84
    If quanta had logic.Michael Friedman & Clark Glymour - 1972 - Journal of Philosophical Logic 1 (1):16 - 28.
  35. Convergence to the truth and nothing but the truth.Kevin T. Kelly & Clark Glymour - 1989 - Philosophy of Science 56 (2):185-220.
    One construal of convergent realism is that for each clear question, scientific inquiry eventually answers it. In this paper we adapt the techniques of formal learning theory to determine in a precise manner the circumstances under which this ideal is achievable. In particular, we define two criteria of convergence to the truth on the basis of evidence. The first, which we call EA convergence, demands that the theorist converge to the complete truth "all at once". The second, which we call (...)
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  36. Theoretical Equivalence and the Semantic View of Theories.Clark Glymour - 2013 - Philosophy of Science 80 (2):286-297.
    Halvorson argues through a series of examples and a general result due to Myers that the “semantic view” of theories has no available account of formal theoretical equivalence. De Bouvere provides criteria overlooked in Halvorson’s paper that are immune to his counterexamples and to the theorem he cites. Those criteria accord with a modest version of the semantic view that rejects some of Van Fraassen’s apparent claims while retaining the core of Patrick Suppes’s proposal. I do not endorse any version (...)
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  37.  92
    Inductive inference from theory Laden data.Kevin T. Kelly & Clark Glymour - 1992 - Journal of Philosophical Logic 21 (4):391 - 444.
    Kevin T. Kelly and Clark Glymour. Inductive Inference from Theory-Laden Data.
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  38. The epistemology of geometry.Clark Glymour - 1977 - Noûs 11 (3):227-251.
    Your use of the JSTOR archive indicates your acceptance of J STOR’s Terms and Conditions of Use, available at http://www.jstor.org/about/terms.html. J STOR’s Terms and Conditions of Use provides, in part, that unless you have obtained prior permission, you may not download an entire issue of a journal or multiple copies of articles, and you may use content in the JSTOR archive only for your personal, non—commercial use.
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  39.  68
    Theoretical Realism and Theoretical Equivalence.Clark Glymour - 1970 - PSA: Proceedings of the Biennial Meeting of the Philosophy of Science Association 1970:275 - 288.
    Your use of the JSTOR archive indicates your acceptance of J STOR’s Terms and Conditions of Use, available at http://www.jstor.org/about/tenns.htm1. J STOR’s Terms and Conditions of Use provides, in part, that unless you have obtained prior permission, you may not download an entire issue of a journal or multiple copies of articles, and you may use content in the JSTOR archive only for your personal, non—commercial use.
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  40.  37
    Causal Learning Mechanisms in Very Young Children: Two-, Three-, and Four-Year-Olds Infer Causal Relations From Patterns of Variation and Covariation.Clark Glymour, Alison Gopnik, David M. Sobel & Laura E. Schulz - unknown
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  41. Actual causation: a stone soup essay.Clark Glymour, David Danks, Bruce Glymour, Frederick Eberhardt, Joseph Ramsey & Richard Scheines - 2010 - Synthese 175 (2):169-192.
    We argue that current discussions of criteria for actual causation are ill-posed in several respects. (1) The methodology of current discussions is by induction from intuitions about an infinitesimal fraction of the possible examples and counterexamples; (2) cases with larger numbers of causes generate novel puzzles; (3) "neuron" and causal Bayes net diagrams are, as deployed in discussions of actual causation, almost always ambiguous; (4) actual causation is (intuitively) relative to an initial system state since state changes are relevant, but (...)
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  42.  58
    Einstein and Hilbert: Two Months in the History of General Relativity.John Earman & Clark Glymour - unknown
  43.  80
    Foundations of Space-Time Theories: Minnesota Studies in the Philosophy of Science.John Earman, Clark N. Glymour & John J. Stachel (eds.) - 1974 - University of Minnesota Press.
    Some Philosophical Prehistory of General Relativity As history, my remarks will form rather a medley. If they can claim any sort of unity (apart from a ...
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  44.  75
    What Language Dependence Problem? A Reply for Joyce to Fitelson on Joyce.Arthur Paul Pedersen & Clark Glymour - 2012 - Philosophy of Science 79 (4):561-574.
    In an essay recently published in this journal, Branden Fitelson argues that a variant of Miller’s argument for the language dependence of the accuracy of predictions can be applied to Joyce’s notion of accuracy of credences formulated in terms of scoring rules, resulting in a general potential problem for Joyce’s argument for probabilism. We argue that no relevant problem of the sort Fitelson supposes arises since his main theorem and his supporting arguments presuppose the validity of nonlinear transformations of credence (...)
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  45.  81
    Relativity and Eclipses: The British Eclipse Expedition of 1919 and its Predecessors.John Earman & Clark Glymour - unknown
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  46. "Afterword to" Freud, Kepler and the Clinical Evidence.C. Glymour - 1982 - In Richard Wollheim & James Hopkins (eds.), Philosophical Essays on Freud. Cambridge University Press. pp. 29--31.
     
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  47.  19
    Missing elements: what philosophers of science might discover in chemistry.Andrea Woody & Clark Glymour - 2000 - In Nalini Bhushan & Stuart Rosenfeld (eds.), Of Minds and Molecules: New Philosophical Perspectives on Chemistry. New York: Oxford University Press. pp. 17--33.
  48.  7
    Comorbid science?David Danks, Stephen Fancsali, Clark Glymour & Richard Scheines - 2010 - Behavioral and Brain Sciences 33 (2-3):153 - 155.
    We agree with Cramer et al.'s goal of the discovery of causal relationships, but we argue that the authors' characterization of latent variable models (as deployed for such purposes) overlooks a wealth of extant possibilities. We provide a preliminary analysis of their data, using existing algorithms for causal inference and for the specification of latent variable models.
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  49.  30
    The Computational and Experimental Complexity of Gene Perturbations for Regulatory Network Search.David Danks, Clark Glymour & Peter Spirtes - 2003 - In W. H. Hsu, R. Joehanes & C. D. Page (eds.), Proceedings of IJCAI-2003 workshop on learning graphical models for computational genomics.
    Various algorithms have been proposed for learning (partial) genetic regulatory networks through systematic measurements of differential expression in wild type versus strains in which expression of specific genes has been suppressed or enhanced, as well as for determining the most informative next experiment in a sequence. While the behavior of these algorithms has been investigated for toy examples, the full computational complexity of the problem has not received sufficient attention. We show that finding the true regulatory network requires (in the (...)
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  50. Probability and the Explanatory Virtues: Figure 1.Clark Glymour - 2015 - British Journal for the Philosophy of Science 66 (3):591-604.
    Recent literature in philosophy of science has addressed purported notions of explanatory virtues—‘explanatory power’, ‘unification’, and ‘coherence’. In each case, a probabilistic relation between a theory and data is said to measure the power of an explanation, or degree of unification, or degree of coherence. This essay argues that the measures do not capture cases that are paradigms of scientific explanation, that the available psychological evidence indicates that the measures do not capture judgements of explanatory power, and, finally, that the (...)
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