Results for 'Probabilistic Inference'

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  1.  55
    Probabilistic Inference and Probabilistic Reasoning. Kyburg - 1990 - Philosophical Topics 18 (2):107-116.
  2.  21
    Probabilistic inference in artificial intelligence: The method of Bayesian networks.Jean-Louis Golmard - 1955 - In Anthony Eagle (ed.), Philosophy of Probability. Routledge. pp. 257--291.
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  3. Qualitative probabilistic inference under varied entropy levels.Paul D. Thorn & Gerhard Schurz - 2016 - Journal of Applied Logic 19 (2):87-101.
    In previous work, we studied four well known systems of qualitative probabilistic inference, and presented data from computer simulations in an attempt to illustrate the performance of the systems. These simulations evaluated the four systems in terms of their tendency to license inference to accurate and informative conclusions, given incomplete information about a randomly selected probability distribution. In our earlier work, the procedure used in generating the unknown probability distribution (representing the true stochastic state of the world) (...)
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  4.  25
    Probabilistic inferences from conjoined to iterated conditionals.Giuseppe Sanfilippo, Niki Pfeifer, D. E. Over & A. Gilio - 2018 - International Journal of Approximate Reasoning 93:103-118.
    There is wide support in logic, philosophy, and psychology for the hypothesis that the probability of the indicative conditional of natural language, P(if A then B), is the conditional probability of B given A, P(B|A). We identify a conditional which is such that P(if A then B)=P(B|A) with de Finetti's conditional event, B|A. An objection to making this identification in the past was that it appeared unclear how to form compounds and iterations of conditional events. In this paper, we illustrate (...)
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  5.  6
    Approximating probabilistic inference in Bayesian belief networks is NP-hard.Paul Dagum & Michael Luby - 1993 - Artificial Intelligence 60 (1):141-153.
  6.  5
    On probabilistic inference by weighted model counting.Mark Chavira & Adnan Darwiche - 2008 - Artificial Intelligence 172 (6-7):772-799.
  7. Qualitative Probabilistic Inference with Default Inheritance.Paul D. Thorn, Christian Eichhorn, Gabriele Kern-Isberner & Gerhard Schurz - 2015 - In Christoph Beierle, Gabriele Kern-Isberner, Marco Ragni & Frieder Stolzenburg (eds.), Proceedings of the Ki 2015 Workshop on Formal and Cognitive Reasoning. pp. 16-28.
    There are numerous formal systems that allow inference of new conditionals based on a conditional knowledge base. Many of these systems have been analysed theoretically and some have been tested against human reasoning in psychological studies, but experiments evaluating the performance of such systems are rare. In this article, we extend the experiments in [19] in order to evaluate the inferential properties of c-representations in comparison to the well-known Systems P and Z. Since it is known that System Z (...)
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  8.  7
    Panlingual lexical translation via probabilistic inference. Mausam, Stephen Soderland, Oren Etzioni, Daniel S. Weld, Kobi Reiter, Michael Skinner, Marcus Sammer & Jeff Bilmes - 2010 - Artificial Intelligence 174 (9-10):619-637.
  9.  14
    Probabilistic Inference: Task Dependency and Individual Differences of Probability Weighting Revealed by Hierarchical Bayesian Modeling.Moritz Boos, Caroline Seer, Florian Lange & Bruno Kopp - 2016 - Frontiers in Psychology 7.
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  10.  17
    On probabilistic inference in relational conditional logics.M. Thimm & G. Kern-Isberner - 2012 - Logic Journal of the IGPL 20 (5):872-908.
  11. Probabilistic Inference and Probabilistic Reasoning.Jr: Henry E. Kyburg - 1990 - Philosophical Topics 18 (2):107-116.
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  12.  15
    The computational complexity of probabilistic inference using bayesian belief networks.Gregory F. Cooper - 1990 - Artificial Intelligence 42 (2-3):393-405.
  13.  32
    Ambiguity and uncertainty in probabilistic inference.Hillel J. Einhorn & Robin M. Hogarth - 1985 - Psychological Review 92 (4):433-461.
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  14.  39
    The origins of probabilistic inference in human infants.Stephanie Denison & Fei Xu - 2014 - Cognition 130 (3):335-347.
  15.  27
    PROBabilities from EXemplars (PROBEX): a “lazy” algorithm for probabilistic inference from generic knowledge.Peter Juslin & Magnus Persson - 2002 - Cognitive Science 26 (5):563-607.
    PROBEX (PROBabilities from EXemplars), a model of probabilistic inference and probability judgment based on generic knowledge is presented. Its properties are that: (a) it provides an exemplar model satisfying bounded rationality; (b) it is a “lazy” algorithm that presumes no pre‐computed abstractions; (c) it implements a hybrid‐representation, similarity‐graded probability. We investigate the ecological rationality of PROBEX and find that it compares favorably with Take‐The‐Best and multiple regression (Gigerenzer, Todd, & the ABC Research Group, 1999). PROBEX is fitted to (...)
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  16. Determinism, Supervenience, and Probabilistic Inference.John-Michael Kuczynski - 2016 - Amazon Digital Services LLC.
    This volume identifies the different ways in which one event can compel the occurrence of another event and on this basis identifies important facts about the nature of probability and probabilistic inference.
     
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  17.  43
    Goldman on Probabilistic Inference.Fallis Don - 2002 - Philosophical Studies 109 (3):223 - 240.
    In his recent book, Knowledge in a Social World, Alvin Goldman claims to have established that if a reasoner starts with accurate estimates of the reliability of new evidence and conditionalizes on this evidence, then this reasoner is objectively likely to end up closer to the truth. In this paper, I argue that Goldman's result is not nearly as philosophically significant as he would have us believe. First, accurately estimating the reliability of evidence – in the sense that Goldman requires (...)
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  18. Graphical models: Probabilistic inference.Michael I. Jordan & Yair Weiss - 2002 - In The Handbook of Brain Theory and Neural Networks.
     
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  19.  21
    Compactness in finite probabilistic inference.John M. Vickers - 1990 - Journal of Philosophical Logic 19 (3):305 - 316.
  20.  29
    A primer on probabilistic inference.Thomas L. Griffiths & Alan Yuille - 2008 - In Nick Chater & Mike Oaksford (eds.), The Probabilistic Mind: Prospects for Bayesian Cognitive Science. Oxford University Press. pp. 33--57.
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  21.  6
    A unified probabilistic inference model for targeted marketing.Jiajin Huang & Ning Zhong - 2008 - In S. Iwata, Y. Oshawa, S. Tsumoto, N. Zhong, Y. Shi & L. Magnani (eds.), Communications and Discoveries From Multidisciplinary Data. Springer. pp. 171--186.
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  22. A New Look at Hume’s Theory of Probabilistic Inference.Mark Collier - 2005 - Hume Studies 31 (1):21-36.
    We must rethink our assessment of Hume’s theory of probabilistic inference. Hume scholars have traditionally dismissed his naturalistic explanation of how we make inferences under conditions of uncertainty; however, psychological experiments and computer models from cognitive science provide substantial support for Hume’s account. Hume’s theory of probabilistic inference is far from obsolete or outdated; on the contrary, it stands at the leading edge of our contemporary science of the mind.
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  23.  19
    The coordination of probabilistic inference in neural systems.William A. Phillips - 2013 - In Gordana Dodig-Crnkovic Raffaela Giovagnoli (ed.), Computing Nature. pp. 61--70.
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  24.  28
    Bayes and the first person: consciousness of thoughts, inner speech and probabilistic inference.Franz Knappik - 2018 - Synthese 195 (5):2113-2140.
    On a widely held view, episodes of inner speech provide at least one way in which we become conscious of our thoughts. However, it can be argued, on the one hand, that consciousness of thoughts in virtue of inner speech presupposes interpretation of the simulated speech. On the other hand, the need for such self-interpretation seems to clash with distinctive first-personal characteristics that we would normally ascribe to consciousness of one’s own thoughts: a special reliability; a lack of conscious ambiguity (...)
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  25. Bayes and the first person: consciousness of thoughts, inner speech and probabilistic inference.Franz Knappik - 2017 - Synthese:1-28.
    On a widely held view, episodes of inner speech provide at least one way in which we become conscious of our thoughts. However, it can be argued, on the one hand, that consciousness of thoughts in virtue of inner speech presupposes interpretation of the simulated speech. On the other hand, the need for such self-interpretation seems to clash with distinctive first-personal characteristics that we would normally ascribe to consciousness of one’s own thoughts: a special reliability; a lack of conscious ambiguity (...)
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  26.  26
    Take The Best versus simultaneous feature matching: Probabilistic inferences from memory and effects of reprensentation format.Arndt Bröder & Stefanie Schiffer - 2003 - Journal of Experimental Psychology: General 132 (2):277.
  27.  16
    The Probabilistic Cell: Implementation of a Probabilistic Inference by the Biochemical Mechanisms of Phototransduction.Jacques Droulez - 2010 - Acta Biotheoretica 58 (2-3):103-120.
    When we perceive the external world, our brain has to deal with the incompleteness and uncertainty associated with sensory inputs, memory and prior knowledge. In theoretical neuroscience probabilistic approaches have received a growing interest recently, as they account for the ability to reason with incomplete knowledge and to efficiently describe perceptive and behavioral tasks. How can the probability distributions that need to be estimated in these models be represented and processed in the brain, in particular at the single cell (...)
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  28.  29
    Goal-directed decision making as probabilistic inference: A computational framework and potential neural correlates.Alec Solway & Matthew M. Botvinick - 2012 - Psychological Review 119 (1):120-154.
  29.  37
    The interrogative approach to inquiry and probabilistic inference.Jaakko Hintikka - 1987 - Erkenntnis 26 (3):429 - 442.
  30.  19
    Editorial to the special issue on perspectives on human probabilistic inference and the 'Bayesian brain'.Johan Kwisthout, William A. Phillips, Anil K. Seth, Iris van van Rooij & Andy Clark - 2017 - Brain and Cognition 112:1-2.
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  31.  18
    The fuzzy logic of chaos and probabilistic inference.I. Antoniou & Z. Suchanecki - 1997 - Foundations of Physics 27 (3):333-362.
    The logic of a physical system consists of the elementary observables of the system. We show that for chaotic systems the logic is not any more the classical Boolean lattice but a kind of fuzzy logic which we characterize for a class of chaotic maps. Among other interesting properties the fuzzy logic of chaos does not allow for infinite combinations of propositions. This fact reflects the instability of dynamics and it is shared also by quantum systems with diagonal singularity. We (...)
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  32. Technical introduction: a primer on probabilistic inference.Thomas L. Griffiths & Yuille & Alan - 2008 - In Nick Chater & Mike Oaksford (eds.), The Probabilistic Mind: Prospects for Bayesian Cognitive Science. Oxford University Press.
     
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  33.  46
    Minimum message length and statistically consistent invariant (objective?) Bayesian probabilistic inference—from (medical) “evidence”.David L. Dowe - 2008 - Social Epistemology 22 (4):433 – 460.
    “Evidence” in the form of data collected and analysis thereof is fundamental to medicine, health and science. In this paper, we discuss the “evidence-based” aspect of evidence-based medicine in terms of statistical inference, acknowledging that this latter field of statistical inference often also goes by various near-synonymous names—such as inductive inference (amongst philosophers), econometrics (amongst economists), machine learning (amongst computer scientists) and, in more recent times, data mining (in some circles). Three central issues to this discussion of (...)
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  34. Probabilistic Reasoning in Intelligent Systems: Networks of Plausible Inference.Judea Pearl - 1988 - Morgan Kaufmann.
    The book can also be used as an excellent text for graduate-level courses in AI, operations research, or applied probability.
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  35. Probabilistic Reasoning in Intelligent Systems: Networks of Plausible Inference.J. Pearl, F. Bacchus, P. Spirtes, C. Glymour & R. Scheines - 1988 - Synthese 104 (1):161-176.
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  36.  48
    Direct inference and probabilistic accounts of induction.Jon Williamson - 2023 - Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 54 (3):451-472.
    Schurz (2019, ch. 4) argues that probabilistic accounts of induction fail. In particular, he criticises probabilistic accounts of induction that appeal to direct inference principles, including subjective Bayesian approaches (e.g., Howson 2000) and objective Bayesian approaches (see, e.g., Williamson 2017). In this paper, I argue that Schurz’ preferred direct inference principle, namely Reichenbach’s Principle of the Narrowest Reference Class, faces formidable problems in a standard probabilistic setting. Furthermore, the main alternative direct inference principle, Lewis’ (...)
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  37.  29
    Suppes’ probabilistic theory of causality and causal inference in economics.Julian Reiss - 2016 - Journal of Economic Methodology 23 (3):289-304.
    This paper examines Patrick Suppes’ probabilistic theory of causality understood as a theory of causal inference, and draws some lessons for empirical economics and contemporary debates in the foundations of econometrics. It argues that a standard method of empirical economics, multiple regression, is inadequate for most but the simplest applications, that the Bayes’ nets approach, which can be understood as a generalisation of Suppes’ theory, constitutes a considerable improvement but is still subject to important limitations, and that the (...)
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  38.  87
    Probabilistically Valid Inference of Covariation From a Single x,y Observation When Univariate Characteristics Are Known.Michael E. Doherty, Richard B. Anderson, Amanda M. Kelley & James H. Albert - 2009 - Cognitive Science 33 (2):183-205.
    Participants were asked to draw inferences about correlation from single x,y observations. In Experiment 1 statistically sophisticated participants were given the univariate characteristics of distributions of x and y and asked to infer whether a single x, y observation came from a correlated or an uncorrelated population. In Experiment 2, students with a variety of statistical backgrounds assigned posterior probabilities to five possible populations based on single x, y observations, again given knowledge of the univariate statistics. In Experiment 3, statistically (...)
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  39.  34
    Probabilistic modal inferences.Peter Forrest - 1981 - Australasian Journal of Philosophy 59 (1):38 – 53.
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  40.  2
    ‘Probabilist’ Deductive Inference in Gassendi’s Logic.Saul Fisher - 1998 - The Paideia Archive: Twentieth World Congress of Philosophy 8:58-64.
    In his Logic, Pierre Gassendi proposes that our inductive inferences lack the information we would need to be certain of the claims that they suggest. Not even deductivist inference can insure certainty about empirical claims because the experientially attained premises with which we adduce support for such claims are no greater than probable. While something is surely amiss in calling deductivist inference "probabilistic," it seems Gassendi has hit upon a now-familiar, sensible point—namely, the use of deductive reasoning (...)
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  41.  43
    Tractable inference for probabilistic data models.Lehel Csato, Manfred Opper & Ole Winther - 2003 - Complexity 8 (4):64-68.
  42.  17
    Probabilistic and Causal Inference: the Works of Judea Pearl.Hector Geffner, Rita Dechter & Joseph Halpern (eds.) - 2022 - ACM Books.
    Professor Judea Pearl won the 2011 Turing Award "for fundamental contributions to artificial intelligence through the development of a calculus for probabilistic and causal reasoning." This book contains the original articles that led to the award, as well as other seminal works, divided into four parts: heuristic search, probabilistic reasoning, causality, first period (1988-2001), and causality, recent period (2002-2020). Each of these parts starts with an introduction written by Judea Pearl. The volume also contains original, contributed articles by (...)
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  43.  21
    Pattern inference theory: A probabilistic approach to vision.Daniel Kersten & P. W. Schrater - 2002 - In Dieter Heyer & Rainer Mausfeld (eds.), Perception and the Physical World. Wiley. pp. 191--228.
  44. Inferring a probabilistic model of semantic memory from word association norms.Mark Andrews, David Vinson & Gabriella Vigliocco - 2008 - In B. C. Love, K. McRae & V. M. Sloutsky (eds.), Proceedings of the 30th Annual Conference of the Cognitive Science Society. Cognitive Science Society. pp. 1941--1946.
     
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  45.  4
    Probabilistic reasoning in intelligent systems: Networks of plausible inference.Stig Kjær Andersen - 1991 - Artificial Intelligence 48 (1):117-124.
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  46. Conditional inference and constraint satisfaction: Reconciling mental models and the probabilistic approach?Mike Oaksford & Chater & Nick - 2010 - In Mike Oaksford & Nick Chater (eds.), Cognition and Conditionals: Probability and Logic in Human Thinking. Oxford University Press.
     
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  47.  12
    Probabilistic Versus Deterministic Inductive Inference in Nonstandard Numberings.Rüsinš Freivalds, Efim B. Kinber & Rolf Wiehagen - 1988 - Mathematical Logic Quarterly 34 (6):531-539.
  48.  29
    Probabilistic Versus Deterministic Inductive Inference in Nonstandard Numberings.Rüsinš Freivalds, Efim B. Kinber & Rolf Wiehagen - 1988 - Zeitschrift fur mathematische Logik und Grundlagen der Mathematik 34 (6):531-539.
  49. Probabilistic Reasoning in Intelligent Systems: Networks of Plausible Inference by Judea Pearl. [REVIEW]Henry E. Kyburg - 1991 - Journal of Philosophy 88 (8):434-437.
  50. Probabilistic Reasoning in Intelligent Systems: Networks of Plausible Inference by Judea Pearl. [REVIEW]Henry E. Kyburg Jr - 1991 - Journal of Philosophy 88 (8):434-437.
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