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Statistical explanation

In Robert G. Colodny (ed.), The Nature and Function of Scientific Theories: Essays in Contemporary Science and Philosophy. University of Pittsburgh Press. pp. 173--231 (1970)

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  1. Social explanation and computational simulation.R. Keith Sawyer - 2004 - Philosophical Explorations 7 (3):219-231.
    I explore a type of computational social simulation known as artificial societies. Artificial society simulations are dynamic models of real-world social phenomena. I explore the role that these simulations play in social explanation, by situating these simulations within contemporary philosophical work on explanation and on models. Many contemporary philosophers have argued that models provide causal explanations in science, and that models are necessary mediators between theory and data. I argue that artificial society simulations provide causal mechanistic explanations. I conclude that (...)
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  • On the limits of the statistical-causal analysis as a diagnostic procedure.Kazem Sadegh-Zadeh - 1978 - Theory and Decision 9 (1):93-107.
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  • Critical Notice of Scientific Explanation by Philip Kitcher and Wesley C. Salmon; and of Four Decades of Scientific Explanation by Wesley C. Salmon. [REVIEW]James H. Fetzer - 1991 - Philosophy of Science 58 (2):288-306.
    Philip Kitcher and Wesley C. Salmon have edited an important anthology of new papers on scientific explanation, a central problem—possibly the central problem—in the theory of science. Their collection begins with a comprehensive essay by Salmon that attempts to trace the development of work on this issue from Hempel and Oppenheim to the present. The University of Minnesota Press has published this article as a separate volume, which it is promoting as “a definitive introduction” to this area of inquiry. Apart (...)
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  • Epistemic and Ontic Theories of Explanation and Confirmation.Robert T. Pennock - 1995 - Kagaku Tetsugaku 28:31-45.
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  • Convergence and Parallelism in Evolution: A Neo-Gouldian Account.Trevor Pearce - 2012 - British Journal for the Philosophy of Science 63 (2):429-448.
    Determining whether a homoplastic trait is the result of convergence or parallelism is central to many of the most important contemporary discussions in biology and philosophy: the relation between evolution and development, the importance of constraints on variation, and the role of contingency in evolution. In this article, I show that two recent attempts to draw a black-or-white distinction between convergence and parallelism fail, albeit for different reasons. Nevertheless, I argue that we should not be afraid of gray areas: a (...)
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  • Probability and normativity.David Papineau - 1989 - Behavioral and Brain Sciences 12 (3):484-485.
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  • Coherence and abduction.Paul O'Rorke - 1989 - Behavioral and Brain Sciences 12 (3):484-484.
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  • Inductive systematization: Definition and a critical survey.Ilkka Niiniluoto - 1972 - Synthese 25 (1-2):25 - 81.
    In 1958, to refute the argument known as the theoretician's dilemma, Hempel suggested that theoretical terms might be logically indispensable for inductive systematization of observational statements. This thesis, in some form or another, has later been supported by Scheffler, Lehrer, and Tuomela, and opposed by Bohnert, Hooker, Stegmüller, and Cornman. In this paper, a critical survey of this discussion is given. Several different putative definitions of the crucial notion inductive systematization achieved by a theory are discussed by reference to the (...)
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  • (1 other version)Critical notice.Martin E. Gerwin - 1985 - Canadian Journal of Philosophy 15 (2):363-378.
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  • Probable explanation.D. H. Mellor - 1976 - Australasian Journal of Philosophy 54 (3):231 – 241.
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  • Acceptability, analogy, and the acceptability of analogies.Robert N. McCauley - 1989 - Behavioral and Brain Sciences 12 (3):482-483.
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  • Explanationism, ECHO, and the connectionist paradigm.William G. Lycan - 1989 - Behavioral and Brain Sciences 12 (3):480-480.
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  • To Explain or to Predict: Which One is Mandatory?Robert W. P. Luk - 2018 - Foundations of Science 23 (2):411-414.
    Recently, Luk mentioned that scientific knowledge both explains and predicts. Do these two functions of scientific knowledge have equal significance, or is one of the two functions more important than the other? This commentary explains why prediction may be mandatory but explanation may be only desirable and optional.
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  • Literalism and the applicability of arithmetic.L. Luce - 1991 - British Journal for the Philosophy of Science 42 (4):469-489.
    Philosophers have recently expressed interest in accounting for the usefulness of mathematics to science. However, it is certainly not a new concern. Putnam and Quine have each worked out an argument for the existence of mathematical objects from the indispensability of mathematics to science. Were Quine or Putnam to disregard the applicability of mathematics to science, he would not have had as strong a case for platonism. But I think there must be ways of parsing mathematical sentences which account for (...)
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  • Thought Experiments and The Pragmatic Nature of Explanation.Panagiotis Karadimas - 2024 - Foundations of Science 29 (2):257-280.
    Different why-questions emerge under different contexts and require different information in order to be addressed. Hence a relevance relation can hardly be invariant across contexts. However, what is indeed common under any possible context is that all explananda require scientific information in order to be explained. So no scientific information is in principle explanatorily irrelevant, it only becomes so under certain contexts. In view of this, scientific thought experiments can offer explanations, should we analyze their representational strategies. Their representations involve (...)
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  • On the testability of ECHO.D. C. Earle - 1989 - Behavioral and Brain Sciences 12 (3):474-474.
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  • Statistical explanation and statistical support.Colin Howson - 1983 - Erkenntnis 20 (1):61 - 78.
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  • Unifying statistically autonomous and mathematical explanations.Travis L. Holmes - 2021 - Biology and Philosophy 36 (3):1-22.
    A subarea of the debate over the nature of evolutionary theory addresses what the nature of the explanations yielded by evolutionary theory are. The statisticalist line is that the general principles of evolutionary theory are not only amenable to a mathematical interpretation but that they need not invoke causes to furnish explanations. Causalists object that construction of these general principles involves crucial causal assumptions. A recent view claims that some biological explanations are statistically autonomous explanations (SAEs) whereby phenomena are accounted (...)
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  • Are explanatory coherence and a connectionist model necessary?Jerry R. Hobbs - 1989 - Behavioral and Brain Sciences 12 (3):476-477.
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  • . . .And away from a theory of explanation itself.Christopher Hitchcock - 2005 - Synthese 143 (1-2):109-124.
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  • On transmitted information as a measure of explanatory power.Joseph F. Hanna - 1978 - Philosophy of Science 45 (4):531-562.
    This paper contrasts two information-theoretic approaches to statistical explanation: namely, (1) an analysis, which originated in my earlier research on problems of testing stochastic models of learning, based on an entropy-like measure of expected transmitted-information (and here referred to as the Expected-Information Model), and (2) the analysis, which was proposed by James Greeno (and which is closely related to Wesley Salmon's Statistical Relevance Model), based on the information-transmitted-by-a-system. The substantial differences between these analyses can be traced to the following basic (...)
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  • An epistemic analysis of explanations and causal beliefs.Peter Gärdenfors - 1990 - Topoi 9 (2):109-124.
    The analyses of explanation and causal beliefs are heavily dependent on using probability functions as models of epistemic states. There are, however, several aspects of beliefs that are not captured by such a representation and which affect the outcome of the analyses. One dimension that has been neglected in this article is the temporal aspect of the beliefs. The description of a single event naturally involves the time it occurred. Some analyses of causation postulate that the cause must not occur (...)
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  • Coherence: Beyond constraint satisfaction.Gareth Gabrys & Alan Lesgold - 1989 - Behavioral and Brain Sciences 12 (3):475-475.
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  • Rethinking objective homogeneity: Statistical versus ontic approaches.Richard N. Burnor - 1993 - Philosophical Studies 71 (3):307 - 325.
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  • What’s Wrong with Salmon’s History: The Third Decade.James H. Fetzer - 1992 - Philosophy of Science 59 (2):246-262.
    My purpose here is to elaborate the reasons I maintain that Salmon has not been completely successful in reporting the history of work on explanation. The most important limitation of his account is that it does not emphasize the critical necessity to embrace a suitable conception of probability in the development of the theory of probabilistic explanation.
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  • What's in a link?Jerome A. Feldman - 1989 - Behavioral and Brain Sciences 12 (3):474-475.
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  • Determinants of judgments of explanatory power: Credibility, Generality, and Statistical Relevance.Matteo Colombo, Leandra Bucher & Jan Sprenger - 2017 - Frontiers in Psychology:doi:10.3389/fpsyg.2017.01430.
    Explanation is a central concept in human psychology. Drawing upon philosophical theories of explanation, psychologists have recently begun to examine the relationship between explanation, probability and causality. Our study advances this growing literature in the intersection of psychology and philosophy of science by systematically investigating how judgments of explanatory power are affected by the prior credibility of a potential explanation, the causal framing used to describe the explanation, the generalizability of the explanation, and its statistical relevance for the evidence. Collectively, (...)
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  • Hempel’s Ambiguity.J. Alberto Coffa - 1974 - Synthese 28 (2):141 - 163.
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  • Explanatory coherence as a psychological theory.P. C.-H. Cheng & M. Keane - 1989 - Behavioral and Brain Sciences 12 (3):469-470.
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  • Which explanatory role for mathematics in scientific models? Reply to “The Explanatory Dispensability of Idealizations”.Silvia Bianchi - 2016 - Synthese 193 (2):387-401.
    In The Explanatory Dispensability of Idealizations, Sam Baron suggests a possible strategy enabling the indispensability argument to break the symmetry between mathematical claims and idealization assumptions in scientific models. Baron’s distinction between mathematical and non-mathematical idealization, I claim, is in need of a more compelling criterion, because in scientific models idealization assumptions are expressed through mathematical claims. In this paper I argue that this mutual dependence of idealization and mathematics cannot be read in terms of symmetry and that Baron’s non-causal (...)
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  • When weak explanations prevail.Carl Bereiter & Marlene Scardamalia - 1989 - Behavioral and Brain Sciences 12 (3):468-469.
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  • Explanation and acceptability.Peter Achinstein - 1989 - Behavioral and Brain Sciences 12 (3):467-468.
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  • Rethinking unification : unification as an explanatory value in scientific practice.Merel Lefevere - 2018 - Dissertation, University of Ghent
    This dissertation starts with a concise overview of what philosophers of science have written about unification and its role in scientific explanation during the last 50 years to provide the reader with some background knowledge. In order to bring unification back into the picture, I have followed two strategies, resulting respectively in Parts I and II of this dissertation. In Part I the idea of unification is used to refine and enrich the dominant causalmechanist and causal-interventionist accounts of scientific explanation. (...)
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  • Explanation in Science.James A. Overton - unknown
    Scientific explanation is an important goal of scientific practise. Philosophers have proposed a striking diversity of seemingly incompatible accounts of explanation, from deductive-nomological to statistical relevance, unification, pragmatic, causal-mechanical, mechanistic, causal intervention, asymptotic, and model-based accounts. In this dissertation I apply two novel methods to reexamine our evidence about scientific explanation in practise and thereby address the fragmentation of philosophical accounts. I start by collecting a data set of 781 articles from one year of the journal Science. Using automated text (...)
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  • I meningitis.Henrik R. Wulff - 1984 - In Lennart Nordenfelt & B. Ingemar B. Lindahl (eds.), Health, Disease, and Causal Explanations in Medicine. Reidel. pp. 169--169.
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  • Realism about What? Unobservable Entities and the Metaphysics of Modality.Bruno Borge - 2016 - Filosofia Unisinos 17 (1):69-74.
    Most philosophers who advocate Scientific Realism endorse also Modal Realism, i.e., assume commitments with objective modality. However, the precise relationship between these positions has been scarcely explored. In this paper I argue that there is an indirect implication from SR to MR. Although the basic thesis of SR does not imply MR, both the main argument for SR and the best realist theory of reference do imply modal commitments.
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  • Deductive Nomological Model and Mathematics: Making Dissatisfaction more Satisfactory.Daniele Molinini - 2014 - Theoria 29 (2):223-241.
    The discussion on mathematical explanation has inherited the same sense of dissatisfaction that philosophers of science expressed, in the context of scientific explanation, towards the deductive-nomological model. This model is regarded as unable to cover cases of bona fide mathematical explanations and, furthermore, it is largely ignored in the relevant literature. Surprisingly, the reasons for this ostracism are not sufficiently manifest. In this paper I explore a possible extension of the model to the case of mathematical explanations and I claim (...)
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  • Pure, mixed, and spurious probabilities and their significance for a reductionist theory of causation.David Papineau - 1989 - Minnesota Studies in the Philosophy of Science 13:307-348.
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  • Causation, Coherence and Concepts : a Collection of Essays.Wolfgang Spohn - unknown
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