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  1. Rules to Infinity: The Normative Role of Mathematics in Scientific Explanation.Mark Povich - 2024 - Oxford University Press USA.
    One central aim of science is to provide explanations of natural phenomena. What role(s) does mathematics play in achieving this aim? How does mathematics contribute to the explanatory power of science? Rules to Infinity defends the thesis, common though perhaps inchoate among many members of the Vienna Circle, that mathematics contributes to the explanatory power of science by expressing conceptual rules, rules which allow the transformation of empirical descriptions. Mathematics should not be thought of as describing, in any substantive sense, (...)
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  • Computer Simulation, Measurement, and Data Assimilation.Wendy S. Parker - 2017 - British Journal for the Philosophy of Science 68 (1):273-304.
    This article explores some of the roles of computer simulation in measurement. A model-based view of measurement is adopted and three types of measurement—direct, derived, and complex—are distinguished. It is argued that while computer simulations on their own are not measurement processes, in principle they can be embedded in direct, derived, and complex measurement practices in such a way that simulation results constitute measurement outcomes. Atmospheric data assimilation is then considered as a case study. This practice, which involves combining information (...)
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  • Computer simulation and the features of novel empirical data.Greg Lusk - 2016 - Studies in History and Philosophy of Science Part A 56:145-152.
    In an attempt to determine the epistemic status of computer simulation results, philosophers of science have recently explored the similarities and differences between computer simulations and experiments. One question that arises is whether and, if so, when, simulation results constitute novel empirical data. It is often supposed that computer simulation results could never be empirical or novel because simulations never interact with their targets, and cannot go beyond their programming. This paper argues against this position by examining whether, and under (...)
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  • Unwarranted popularity of a power function for heaviness estimates.Helen E. Ross - 1993 - Behavioral and Brain Sciences 16 (1):159-160.
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  • Fechner's impact for measurement theory.Michael Heidelberger - 1993 - Behavioral and Brain Sciences 16 (1):146-148.
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  • The head and tail of psychophysical algebra.Robert A. M. Gregson - 1993 - Behavioral and Brain Sciences 16 (1):141-142.
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  • The Epistemology of Measurement: A Model-based Account.Eran Tal - 2012 - Dissertation, University of Toronto
    This work develops an epistemology of measurement, that is, an account of the conditions under which measurement and standardization methods produce knowledge as well as the nature, scope, and limits of this knowledge. I focus on three questions: (i) how is it possible to tell whether an instrument measures the quantity it is intended to? (ii) what do claims to measurement accuracy amount to, and how might such claims be justified? (iii) when is disagreement among instruments a sign of error, (...)
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  • Physical models and fundamental laws: Using one piece of the world to tell about another.Susan G. Sterrett - 2001 - Mind and Society 3 (1):51-66.
    In this paper I discuss the relationship between model, theories, and laws in the practice of experimental scale modeling. The methodology of experimental scale modeling, also known as physical similarity, differs markedly from that of other kinds of models in ways that are important to issues in philosophy of science. Scale models are not discussed in much depth in mainstream philosophy of science. In this paper, I examine how scale models are used in making inferences. The main question I address (...)
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  • Derivation of Stevens's exponent from neurophysiological data.Artour N. Lebedev - 1993 - Behavioral and Brain Sciences 16 (1):152-153.
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  • A perspective for viewing the history of psychophysics.David J. Murray - 1993 - Behavioral and Brain Sciences 16 (1):115-137.
    Fechner's conception of psychophysics included both “outer psychophysics” the relation between stimulus intensity and the response reflecting sensation strength, and “inner psychophysics” the relation between neurelectric responses and sensation strength. In his own time outer psychophysics focussed on the form of the psychophysical law, with Fechner espousing a logarithmic law, Delboeuf a variant of the logarithmic law incorporating a resting level of neural activity, and Plateau a power law. One of the issues on which the dispute was focussed concerned the (...)
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  • Treating Broome Fairly.Christian Piller - 2017 - Utilitas 29 (2):214-238.
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  • Nonconscious sensation and inner psychophysics.Norman H. Anderson - 1993 - Behavioral and Brain Sciences 16 (1):137-138.
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  • Quantitative Data From Rating Scales: An Epistemological and Methodological Enquiry.Jana Uher - 2018 - Frontiers in Psychology 9.
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  • Sensation strength: Another point of view.Robert Teghtsoonian - 1993 - Behavioral and Brain Sciences 16 (1):161-162.
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  • What Ekman really said.Mats Olsson, Kathleen Harder & John C. Baird - 1993 - Behavioral and Brain Sciences 16 (1):157-158.
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  • The chimera of psychological measurement.Gail A. Hornstein - 1993 - Behavioral and Brain Sciences 16 (1):148-149.
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  • Errors of measurement and explanation-as-unification.John Forge - 1993 - Philosophia 22 (1-2):41-61.
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  • Looking backward: Progress in outer psychophysics.David J. Weiss - 1993 - Behavioral and Brain Sciences 16 (1):165-165.
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  • A parallel view of the history of psychophysics.Gregory R. Lockhead - 1993 - Behavioral and Brain Sciences 16 (1):154-155.
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  • History of psychophysics: Some unanswered questions.Lester E. Krueger - 1993 - Behavioral and Brain Sciences 16 (1):149-150.
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  • Psychophysics, its history and ontology.Horst Gundlach - 1993 - Behavioral and Brain Sciences 16 (1):144-145.
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  • The analysis of sensations as the foundation of all sciences.J. van Brakel - 1993 - Behavioral and Brain Sciences 16 (1):163-164.
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  • The place of psychophysics in the history of sensory science.David J. Murray - 1993 - Behavioral and Brain Sciences 16 (1):166-186.
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  • A perspective for viewing the present of psychophysics.Paul Whittle - 1993 - Behavioral and Brain Sciences 16 (1):165-166.
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  • Quantifying, valuing, choosing.Lawrence E. Marks - 1993 - Behavioral and Brain Sciences 16 (1):156-157.
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  • Does Temperature Have a Metric Structure?Bradford Skow - 2011 - Philosophy of Science 78 (3):472-489.
    Is there anything more to temperature than the ordering of things from colder to hotter? Are there also facts, for example, about how much hotter (twice as hot, three times as hot...) one thing is than another? There certainly are---but the only strong justification for this claim comes from statistical mechanics. What we knew about temperature before the advent of statistical mechanics (what we knew about it from thermodynamics) provided only weak reasons to believe it.
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  • On the construction of psychophysical reality.Mark Wagner - 1993 - Behavioral and Brain Sciences 16 (1):164-165.
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  • Inner psychophysics, neurelectric function and perceptual theories.Stephen Handel - 1993 - Behavioral and Brain Sciences 16 (1):145-146.
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  • Response time based psychophysics: An added perspective.William M. Petrusic - 1993 - Behavioral and Brain Sciences 16 (1):158-159.
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  • Let's not promulgate either Fechner's erroneous algorithm or his unidimensional approach.R. Duncan Luce - 1993 - Behavioral and Brain Sciences 16 (1):155-156.
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  • From metaphysics to psychophysics and statistics.Gerd Gigerenzer - 1993 - Behavioral and Brain Sciences 16 (1):139-140.
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  • Psychophysics and the mind-brain problem.Michel Treisman - 1993 - Behavioral and Brain Sciences 16 (1):162-163.
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  • Bedrock metaphysics, fossil fuel psychophysics.Dale A. Stout - 1993 - Behavioral and Brain Sciences 16 (1):160-161.
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  • Fechner's theory of mental measurement.Stephen Link - 1993 - Behavioral and Brain Sciences 16 (1):153-154.
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  • The antecedents of signal detection theory.Donald Laming - 1993 - Behavioral and Brain Sciences 16 (1):151-152.
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  • The discovery of the psychophysical power law by Tobias Mayer in 1754 and the psychophysical hyperbolic law by Ewald Hering in 1874.Otto-Joachim Grüsser - 1993 - Behavioral and Brain Sciences 16 (1):142-144.
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  • The phantom limb extrapolation.Willard L. Brigner - 1993 - Behavioral and Brain Sciences 16 (1):139-139.
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  • A perspective on psychophysics is not derived just from the history of psychophysicists.Gunnar Borg - 1993 - Behavioral and Brain Sciences 16 (1):138-139.
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