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Simplicity

Stanford Encyclopedia of Philosophy (2008)

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  1. On Quantitative and Qualitative Parsimony.Maciej Sendłak - 2018 - Metaphilosophy 49 (1-2):153-166.
    The distinction between quantitative and qualitative parsimony is supposed to allow David Lewis to dismiss one of the charges against his modal realism: that is, the charge of bloated ontology. The aim of this paper is to undermine Lewis's response to this objection. In order to do this, a distinction between multipliable and nonmultipliable objects is introduced. Based on this it is argued that the acceptance of Lewis's response requires one to believe in modal realism in the first place—that is, (...)
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  • (2 other versions)Counterfactuals.David Lewis - 1973 - Tijdschrift Voor Filosofie 36 (3):602-605.
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  • (1 other version)Steps Toward a Constructive Nominalism.Nelson Goodman & W. V. Quine - 1947 - Journal of Symbolic Logic 13 (1):49-50.
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  • (3 other versions)The Logic of Scientific Discovery.K. Popper - 1959 - British Journal for the Philosophy of Science 10 (37):55-57.
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  • Quantitative Parsimony: Probably for the Better.Lina Jansson & Jonathan Tallant - 2017 - British Journal for the Philosophy of Science 68 (3):781–803.
    ABSTRACT Our aim in this article is to offer a new justification for preferring theories that are more quantitatively parsimonious than their rivals. We discuss cases where it seems clear that those involved opted for more quantitatively parsimonious theories. We extend previous work on quantitative parsimony by offering an independent probabilistic justification for preferring the more quantitatively parsimonious theories in particular episodes of theory choice. Our strategy allows us to avoid worries that other considerations, such as pragmatic factors of computational (...)
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  • Method in the Physical Sciences.G. Schlesinger - 1963 - New York: Routledge.
    Originally published in 1963. Can one discern certain regularities in the manoeuvrings and techniques employed by scientists and can these be formulated into the methodological principles of science? What is the origin and basis of such principles? Are they imposed by objective realities, do they derive from conceptual necessities or are they rooted in our own deep seated predilections? This volume investigates these questions and sheds light on the growth mechanism of the evolving structure of science itself.
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  • Reconstructing The Past: Parsimony, Evolution, and Inference.Elliott Sober - 1988 - MIT Press.
    Reconstructing the Past seeks to clarify and help resolve the vexing methodological issues that arise when biologists try to answer such questions as whether human beings are more closely related to chimps than they are to gorillas. It explores the case for considering the philosophical idea of simplicity/parsimony as a useful principle for evaluating taxonomic theories of evolutionary relationships. For the past two decades, evolutionists have been vigorously debating the appropriate methods that should be used in systematics, the field that (...)
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  • Complexity: A Philosophical Overview.Nicholas Rescher (ed.) - 1998 - Routledge.
    Our world is enormously sophisticated and nature's complexity is literally inexhaustible. As a result, projects to describe and explain natural science can never be completed. This volume explores the nature of complexity and considers its bearing on our world and how we manage our affairs within it.Rescher's overall lesson is that the management of our affairs within a socially, technologically, and cognitively complex environment is plagued with vast management problems and risks of mishap. In primitive societies, failure to understand how (...)
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  • Scientific Method in Practice.Hugh G. Gauch Jr & Hugh G. Gauch - 2003 - Cambridge University Press.
    This textbook will enable scientists to be better scientists by offering them a deeper understanding of the scientific method.
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  • What Not to Multiply Without Necessity.Jonathan Schaffer - 2015 - Australasian Journal of Philosophy 93 (4):644-664.
    The Razor commands us not to multiply entities without necessity. I argue for an alternative principle—The Laser—which commands us not to multiply fundamental entities without necessity.
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  • Parsimony and the Fisher–Wright debate.Anya Plutynski - 2005 - Biology and Philosophy 20 (4):697-713.
    In the past five years, there have been a series of papers in the journal Evolution debating the relative significance of two theories of evolution, a neo-Fisherian and a neo-Wrightian theory, where the neo-Fisherians make explicit appeal to parsimony. My aim in this paper is to determine how we can make sense of such an appeal. One interpretation of parsimony takes it that a theory that contains fewer entities or processes, (however we demarcate these) is more parsimonious. On the account (...)
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  • Against Parthood.Theodore Sider - 2013 - Oxford Studies in Metaphysics 8:237–293.
    Mereological nihilism says that there do not exist (in the fundamental sense) any objects with proper parts. A reason to accept it is that we can thereby eliminate 'part' from fundamental ideology. Many purported reasons to reject it - based on common sense, perception, and the possibility of gunk, for example - are weak. A more powerful reason is that composite objects seem needed for spacetime physics; but sets suffice instead.
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  • Monism: The Priority of the Whole.Jonathan Schaffer - 2010 - Philosophical Review 119 (1):31-76.
    Consider a circle and a pair of its semicircles. Which is prior, the whole or its parts? Are the semicircles dependent abstractions from their whole, or is the circle a derivative construction from its parts? Now in place of the circle consider the entire cosmos (the ultimate concrete whole), and in place of the pair of semicircles consider the myriad particles (the ultimate concrete parts). Which if either is ultimately prior, the one ultimate whole or its many ultimate parts?
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  • How to have a radically minimal ontology.Ross P. Cameron - 2010 - Philosophical Studies 151 (2):249 - 264.
    In this paper I further elucidate and defend a metaontological position that allows you to have a minimal ontology without embracing an error-theory of ordinary talk. On this view 'there are Fs' can be strictly and literally true without bringing an ontological commitment to Fs. Instead of a sentence S committing you to the things that must be amongst the values of the variables if it is true, I argue that S commits you to the things that must exist as (...)
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  • Foundations of Space-Time Theories.Micheal Friedman - 1983 - Princeton University Press.
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  • Theories and things.W. V. Quine (ed.) - 1981 - Cambridge: Harvard University Press.
    Things and Their Place in Theories Our talk of external things, our very notion of things, is just a conceptual apparatus that helps us to foresee and ...
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  • Making things happen: a theory of causal explanation.James F. Woodward - 2003 - New York: Oxford University Press.
    Woodward's long awaited book is an attempt to construct a comprehensive account of causation explanation that applies to a wide variety of causal and explanatory claims in different areas of science and everyday life. The book engages some of the relevant literature from other disciplines, as Woodward weaves together examples, counterexamples, criticisms, defenses, objections, and replies into a convincing defense of the core of his theory, which is that we can analyze causation by appeal to the notion of manipulation.
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  • Model selection and the multiplicity of patterns in empirical data.James W. McAllister - 2007 - Philosophy of Science 74 (5):884-894.
    Several quantitative techniques for choosing among data models are available. Among these are techniques based on algorithmic information theory, minimum description length theory, and the Akaike information criterion. All these techniques are designed to identify a single model of a data set as being the closest to the truth. I argue, using examples, that many data sets in science show multiple patterns, providing evidence for multiple phenomena. For any such data set, there is more than one data model that must (...)
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  • What is the problem of simplicity?Elliott Sober - 2001 - In Arnold Zellner, Hugo A. Keuzenkamp & Michael McAleer (eds.), Simplicity, Inference and Modelling: Keeping It Sophisticatedly Simple. New York: Cambridge University Press. pp. 13-32.
    The problem of simplicity involves three questions: How is the simplicity of a hypothesis to be measured? How is the use of simplicity as a guide to hypothesis choice to be justified? And how is simplicity related to other desirable features of hypotheses -- that is, how is simplicity to be traded-off? The present paper explores these three questions, from a variety of viewpoints, including Bayesianism, likelihoodism, and the framework of predictive accuracy formulated by Akaike (1973). It may turn out (...)
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  • Is fertility virtuous in its own right?Daniel Nolan - 1999 - British Journal for the Philosophy of Science 50 (2):265-282.
    the virtues which are desirable for scientific theories to possess. In this paper I discuss the several species of theoretical virtues called 'fertility', and argue in each case that the desirability of 'fertility' can be explicated in terms of other, more fundamental theoretical virtues.
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  • Quantitative parsimony.Daniel Nolan - 1997 - British Journal for the Philosophy of Science 48 (3):329-343.
    In this paper, I motivate the view that quantitative parsimony is a theoretical virtue: that is, we should be concerned not only to minimize the number of kinds of entities postulated by our theories (i. e. maximize qualitative parsimony), but we should also minimize the number of entities postulated which fall under those kinds. In order to motivate this view, I consider two cases from the history of science: the postulation of the neutrino and the proposal of Avogadro's hypothesis. I (...)
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  • How to Tell When Simpler, More Unified, or Less A d Hoc Theories Will Provide More Accurate Predictions.Malcolm R. Forster & Elliott Sober - 1994 - British Journal for the Philosophy of Science 45 (1):1-35.
    Traditional analyses of the curve fitting problem maintain that the data do not indicate what form the fitted curve should take. Rather, this issue is said to be settled by prior probabilities, by simplicity, or by a background theory. In this paper, we describe a result due to Akaike [1973], which shows how the data can underwrite an inference concerning the curve's form based on an estimate of how predictively accurate it will be. We argue that this approach throws light (...)
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  • (1 other version)The Philosophy of Science: An Encyclopedia.Sahotra Sarkar & Jessica Pfeifer (eds.) - 2005 - New York: Routledge.
    The philosophy of science is the branch of philosophy that examines the profound philosophical questions that arise from scientific research and theories. A sub-discipline of philosophy that emerged in the twentieth century, the philosophy of science is largely a product of the British and Austrian schools of thought and traditions. The first in-depth reference in the field that combines scientific knowledge with philosophical inquiry, The Philosophy of Science: An Encyclopedia is a two-volume set that brings together an international team of (...)
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  • Fact, Fiction, and Forecast.Nelson Goodman - 1955 - Philosophy 31 (118):268-269.
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  • (3 other versions)Critique of Pure Reason.Immanuel Kant - 1781 - Mineola, New York: Macmillan Company. Edited by J. M. D. Meiklejohn.
    Immanuel Kant was one of the leading lights of 18th-century philosophy; his work provided the foundations for later revolutionary thinkers such as Hegel and Marx. This work contains the keystone of his critical philosophy - the basis of human knowledge and truth.
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  • The nature of the natural sciences.Leonard Kollender Nash - 1963 - Boston,: Little, Brown.
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  • Means-ends epistemology.O. Schulte - 1999 - British Journal for the Philosophy of Science 50 (1):1-31.
    This paper describes the corner-stones of a means-ends approach to the philosophy of inductive inference. I begin with a fallibilist ideal of convergence to the truth in the long run, or in the 'limit of inquiry'. I determine which methods are optimal for attaining additional epistemic aims (notably fast and steady convergence to the truth). Means-ends vindications of (a version of) Occam's Razor and the natural generalizations in a Goodmanian Riddle of Induction illustrate the power of this approach. The paper (...)
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  • The principle of parsimony.Elliott Sober - 1981 - British Journal for the Philosophy of Science 32 (2):145-156.
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  • Simplicity As Evidence of Truth.Richard Swinburne - 1997 - Milwaukee: Marquette University Press.
    Content Description #"Under the auspices of the Wisconsin-Alpha Chapter of Phi Sigma Tau."#Includes bibliographical references.
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  • A new solution to the puzzle of simplicity.Kevin T. Kelly - 2007 - Philosophy of Science 74 (5):561-573.
    Explaining the connection, if any, between simplicity and truth is among the deepest problems facing the philosophy of science, statistics, and machine learning. Say that an efficient truth finding method minimizes worst case costs en route to converging to the true answer to a theory choice problem. Let the costs considered include the number of times a false answer is selected, the number of times opinion is reversed, and the times at which the reversals occur. It is demonstrated that (1) (...)
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  • Mathematics, indispensability and scientific progress.Alan Baker - 2001 - Erkenntnis 55 (1):85-116.
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  • (5 other versions)Cambridge Dictionary of Philosophy.Robert Audi (ed.) - 1995 - New York City: Cambridge University Press.
    This is the leading, full-scale comprehensive dictionary of philosophical terms and thinkers to appear in English in more than half a century. Written by a team of more than 550 experts and now widely translated, it contains approximately 5,000 entries ranging from short definitions to longer articles. It is designed to facilitate the understanding of philosophy at all levels and in all fields. Key features of this third edition include: • 500 new entries covering Eastern as well as Western philosophy, (...)
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  • (1 other version)The co-discovery of conservation laws and particle families.Oliver Schulte - 2008 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 39 (2):288-314.
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  • Principles of philosophical reasoning.James H. Fetzer (ed.) - 1984 - Totowa, N.J.: Rowman & Allanheld.
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  • On simplicity and elegance: an essay in intellectual history.Wil Derkse - 1992 - Delft: Eburon.
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  • (1 other version)Simplicity, Inference and Modelling: Keeping It Sophisticatedly Simple.Arnold Zellner, Hugo A. Keuzenkamp & Michael McAleer (eds.) - 2001 - New York: Cambridge University Press.
    The idea that simplicity matters in science is as old as science itself, with the much cited example of Ockham's Razor, 'entia non sunt multiplicanda praeter necessitatem': entities are not to be multiplied beyond necessity. A problem with Ockham's razor is that nearly everybody seems to accept it, but few are able to define its exact meaning and to make it operational in a non-arbitrary way. Using a multidisciplinary perspective including philosophers, mathematicians, econometricians and economists, this 2002 monograph examines simplicity (...)
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  • Realism, rhetoric, and reliability.Kevin T. Kelly, Konstantin Genin & Hanti Lin - 2016 - Synthese 193 (4):1191-1223.
    Ockham’s razor is the characteristic scientific penchant for simpler, more testable, and more unified theories. Glymour’s early work on confirmation theory eloquently stressed the rhetorical plausibility of Ockham’s razor in scientific arguments. His subsequent, seminal research on causal discovery still concerns methods with a strong bias toward simpler causal models, and it also comes with a story about reliability—the methods are guaranteed to converge to true causal structure in the limit. However, there is a familiar gap between convergent reliability and (...)
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  • The myth of simplicity.Mario Bunge - 1963 - Englewood Cliffs, N.J.,: Prentice-Hall.
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  • (1 other version)The Philosophy of Mathematics Today.M. Schirn - 2000 - Studia Logica 64 (1):146-146.
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  • Following in the Footsteps of Aristotle: The Chicago School, the Glue-Stick, and the Razor.Louis Groarke - 1992 - Journal of Speculative Philosophy 6 (3):190 - 205.
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  • A philosopher looks at science.John G. Kemeny - 1959 - Princeton, N.J.,: Van Nostrand.
    Includes chapters on scientific language, mathematics, probability, credibility and induction, scientific explanations, life, and science and values.
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  • Wallace: Zoogeography and the problem of land bridges.Martin Fichman - 1977 - Journal of the History of Biology 10 (1):45-63.
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  • From Candolle to croizat: Comments on the history of biogeography.Gareth Nelson - 1978 - Journal of the History of Biology 11 (2):269-305.
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  • The Concept of the Monopole. A Historical and Analytical Case-Study.Helge Kragh - 1981 - Studies in History and Philosophy of Science Part A 12 (2):141.
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