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  1. Good fences make for good neighbors but bad science: a review of what improves Bayesian reasoning and why. [REVIEW]Gary L. Brase & W. Trey Hill - 2015 - Frontiers in Psychology 6:133410.
    Bayesian reasoning, defined here as the updating of a posterior probability following new information, has historically been problematic for humans. Classic psychology experiments have tested human Bayesian reasoning through the use of word problems and have evaluated each participant’s performance against the normatively correct answer provided by Bayes’ theorem. The standard finding is of generally poor performance. Over the past two decades, though, progress has been made on how to improve Bayesian reasoning. Most notably, research has demonstrated that the use (...)
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  • Baumann on the Monty Hall Problem and Single-Case Probabilities.Ken Levy - 2007 - Synthese 158 (1):139-151.
    Peter Baumann uses the Monty Hall game to demonstrate that probabilities cannot be meaningfully applied to individual games. Baumann draws from this first conclusion a second: in a single game, it is not necessarily rational to switch from the door that I have initially chosen to the door that Monty Hall did not open. After challenging Baumann's particular arguments for these conclusions, I argue that there is a deeper problem with his position: it rests on the false assumption that what (...)
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  • The psychology of dynamic probability judgment: order effect, normative theories, and experimental methodology.Jean Baratgin & Guy Politzer - 2007 - Mind and Society 6 (1):53-66.
    The Bayesian model is used in psychology as the reference for the study of dynamic probability judgment. The main limit induced by this model is that it confines the study of revision of degrees of belief to the sole situations of revision in which the universe is static (revising situations). However, it may happen that individuals have to revise their degrees of belief when the message they learn specifies a change of direction in the universe, which is considered as changing (...)
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  • Single-case probabilities and the case of Monty Hall: Levy’s view.Peter Baumann - 2008 - Synthese 162 (2):265-273.
    In Baumann (American Philosophical Quarterly 42: 71–79, 2005) I argued that reflections on a variation of the Monty Hall problem throws a very general skeptical light on the idea of single-case probabilities. Levy (Synthese, forthcoming, 2007) puts forward some interesting objections which I answer here.
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  • Bayesian reasoning with ifs and ands and ors.Nicole Cruz, Jean Baratgin, Mike Oaksford & David E. Over - 2015 - Frontiers in Psychology 6.
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  • Probability, rational single-case decisions and the Monty Hall Problem.Jan Sprenger - 2010 - Synthese 174 (3):331-340.
    The application of probabilistic arguments to rational decisions in a single case is a contentious philosophical issue which arises in various contexts. Some authors (e.g. Horgan, Philos Pap 24:209–222, 1995; Levy, Synthese 158:139–151, 2007) affirm the normative force of probabilistic arguments in single cases while others (Baumann, Am Philos Q 42:71–79, 2005; Synthese 162:265–273, 2008) deny it. I demonstrate that both sides do not give convincing arguments for their case and propose a new account of the relationship between probabilistic reasoning (...)
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  • The mental representation of causal conditional reasoning: Mental models or causal models.Nilufa Ali, Nick Chater & Mike Oaksford - 2011 - Cognition 119 (3):403-418.
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  • Reasoning and choice in the Monty Hall Dilemma (MHD): implications for improving Bayesian reasoning.Elisabet Tubau, David Aguilar-Lleyda & Eric D. Johnson - 2015 - Frontiers in Psychology 6:133474.
    The Monty Hall Dilemma (MHD) is a two-step decision problem involving counterintuitive conditional probabilities. The first choice is made among three equally probable options, whereas the second choice takes place after the elimination of one of the non-selected options which does not hide the prize. Differing from most Bayesian problems, statistical information in the MHD has to be inferred, either by learning outcome probabilities or by reasoning from the presented sequence of events. This often leads to suboptimal decisions and erroneous (...)
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  • Three Doors, Two Players, and Single-Case Probabilities.Peter Baumann - 2005 - American Philosophical Quarterly 42 (1):71 - 79.
    The well known Monty Hall-problem has a clear solution if one deals with a long enough series of individual games. However, the situation is different if one switches to probabilities in a single case. This paper presents an argument for Monty Hall situations with two players (not just one, as is usual). It leads to a quite general conclusion: One cannot apply probabilistic considerations (for or against any of the strategies) to isolated single cases. If one does that, one cannot (...)
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  • On the Difference between Updating a Knowledge Base and Revising it.H. Katsuno & A. O. Mendelzon - 1992 - In H. Katsuno & A. O. Mendelzon (eds.), Belief Revision. Cambridge University Press. pp. 183-203.
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  • Probability in rational decision-making.Paul K. Moser & D. Hudson Mulder - 1994 - Philosophical Papers 23 (2):109-128.
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  • (3 other versions)The Mind's Arrows: Bayes Nets and Graphical Causal Models in Psychology.C. Hitchcock - 2003 - Erkenntnis 59 (1):136-140.
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  • Deductive schemas with uncertain premises using qualitative probability expressions.Guy Politzer & Jean Baratgin - 2016 - Thinking and Reasoning 22 (1):78-98.
    ABSTRACTThe new paradigm in the psychology of reasoning redirects the investigation of deduction conceptually and methodologically because the premises and the conclusion of the inferences are assumed to be uncertain. A probabilistic counterpart of the concept of logical validity and a method to assess whether individuals comply with it must be defined. Conceptually, we used de Finetti's coherence as a normative framework to assess individuals' performance. Methodologically, we presented inference schemas whose premises had various levels of probability that contained non-numerical (...)
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  • Sleeping Beauty and the Absent-Minded Driver.Jean Baratgin & Bernard Walliser - 2010 - Theory and Decision 69 (3):489-496.
    The Sleeping Beauty problem is presented in a formalized framework which summarizes the underlying probability structure. The two rival solutions proposed by Elga and Lewis differ by a single parameter concerning her prior probability. They can be supported by considering, respectively, that Sleeping Beauty is “fuzzy-minded” and “blank-minded”, the first interpretation being more natural than the second. The traditional absent -minded driver problem is reinterpreted in this framework and sustains Elga’s solution.
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  • Instruction in information structuring improves Bayesian judgment in intelligence analysts.David R. Mandel - 2015 - Frontiers in Psychology 6:137593.
    An experiment was conducted to test the effectiveness of brief instruction in information structuring (i.e., representing and integrating information) for improving the coherence of probability judgments and binary choices among intelligence analysts. Forty-three analysts were presented with comparable sets of Bayesian judgment problems before and immediately after instruction. After instruction, analysts’ probability judgments were more coherent (i.e., more additive and compliant with Bayes theorem). Instruction also improved the coherence of binary choices regarding category membership: after instruction, subjects were more likely (...)
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  • Naive probability: A mental model theory of extensional reasoning.Philip Johnson-Laird, Paolo Legrenzi, Vittorio Girotto, Maria Sonino Legrenzi & Jean-Paul Caverni - 1999 - Psychological Review 106 (1):62-88.
    This article outlines a theory of naive probability. According to the theory, individuals who are unfamiliar with the probability calculus can infer the probabilities of events in an extensional way: They construct mental models of what is true in the various possibilities. Each model represents an equiprobable alternative unless individuals have beliefs to the contrary, in which case some models will have higher probabilities than others. The probability of an event depends on the proportion of models in which it occurs. (...)
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  • (1 other version)Can Bayes' Rule be Justified by Cognitive Rationality Principles?Bernard Walliser & Denis Zwirn - 2002 - Theory and Decision 53 (2):95-135.
    The justification of Bayes' rule by cognitive rationality principles is undertaken by extending the propositional axiom systems usually proposed in two contexts of belief change: revising and updating. Probabilistic belief change axioms are introduced, either by direct transcription of the set-theoretic ones, or in a stronger way but nevertheless in the spirit of the underlying propositional principles. Weak revising axioms are shown to be satisfied by a General Conditioning rule, extending Bayes' rule but also compatible with others, and weak updating (...)
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  • Let's make a deal.Terence Horgan - 1995 - Philosophical Papers 24 (3):209-222.
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  • Uncertain deduction and conditional reasoning.Jonathan St B. T. Evans, Valerie A. Thompson & David E. Over - 2015 - Frontiers in Psychology 6.
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  • Updating: A psychologically basic situation of probability revision.Jean Baratgin & Guy Politzer - 2010 - Thinking and Reasoning 16 (4):253-287.
    The Bayesian model has been used in psychology as the standard reference for the study of probability revision. In the first part of this paper we show that this traditional choice restricts the scope of the experimental investigation of revision to a stable universe. This is the case of a situation that, technically, is known as focusing. We argue that it is essential for a better understanding of human probability revision to consider another situation called updating (Katsuno & Mendelzon, 1992), (...)
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  • A characterization of imaging in terms of Popper functions.Charles B. Cross - 2000 - Philosophy of Science 67 (2):316-338.
    Despite the results of David Lewis, Peter Gärdenfors, and others, showing that imaging and classical conditionalization coincide only in the most trivial probabilistic models of belief revision, it turns out that imaging on a proposition A can always be described via Popper function conditionalization on a proposition that entails A. This result generalizes to any method of belief revision meeting certain minimal requirements. The proof is illustrated by an application of imaging in the context of the Monty Hall Problem.
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  • (3 other versions)The Mind's Arrows: Bayes Nets and Graphical Causal Models in Psychology. [REVIEW]C. Hitchcock - 2003 - Mind 112 (446):340-343.
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  • La probabilità: guardarsi dalle contraffazioni!B. De Finetti - 1976 - Scientia 70 (11):255.
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  • Jargon-derived and Underlying Ambiguity in the Field of Probability.B. De Finetti - 1979 - Scientia 73 (14):713.
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