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Statistics Education and Methodologies

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2020 · Princeton University Press eBooks · 11,885 citations

A Mathematical Theory of Evidence

Both in science and in practical affairs we reason by combining facts only inconclusively supported by evidence. Building on an abstract understanding of this process of combination, this book constructs a new theory of epistemic probability. The theory draws on the work of A. P. Dempster but diverges from Depster's viewpoint by identifying his as epistemic probabilities and taking his rule for combining upper and lower as fundamental. The book opens with a critique of the well-known Bayesian theory of epistemic probability. It then proceeds to develop an alternative to the additive set functions and the rule of conditioning of the Bayesian theory: set functions that need only be what Choquet called monotone of order of infinity. and Dempster's rule for combining such set functions. This rule, together with the idea of weights of evidence, leads to both an extensive new theory and a better understanding of the Bayesian theory. The book concludes with a brief treatment of statistical inference and a discussion of the limitations of epistemic probability. Appendices contain mathematical proofs, which are relatively elementary and seldom depend on mathematics more advanced that the binomial theorem.

1947 · The Economic Journal · 6,030 citations

Mathematical Methods of Statistics.

Journal Article Mathematical Methods of Statistics Get access Mathematical Methods of Statistics. By HAROLD CRAMER. Princeton University Press (London : Geoffrey Cumberlege), 1946. Pp. xvi + 575. 33s. 6d.) R. C. Geary R. C. Geary Department of Applied Economics, Cambridge Search for other works by this author on: Oxford Academic Google Scholar The Economic Journal, Volume 57, Issue 226, 1 June 1947, Pages 200–202, https://doi.org/10.2307/2226151 Published: 01 June 1947