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Geometric Data Analysis designates the approach of Multivariate Statistics that conceptualizes the set of observations as a Euclidean cloud of points. Combinatorial Inference in Geometric Data Analysis gives an overview of multidimensional statistical inference methods applicable to clouds of points that make no assumption on the process of generating data or distributions, and that are not based on random modelling but on permutation procedures recasting in a combinatorial framework. It focuses particularly on the comparison of a group of observations to a reference population (combinatorial test) or to a reference value of a location parameter (geometric test), and on problems of homogeneity, that is the comparison of several groups for two basic designs. These methods involve the use of combinatorial procedures to build a reference set in which we place the data. The chosen test statistics lead to original extensions, such as the geometric interpretation of the observed level, and the construction of a compatibility region. Features: Defines precisely the object under study in the context of multidimensional procedures, that is clouds of points Presents combinatorial tests and related computations with R and Coheris SPAD software Includes four original case studies to illustrate application of the tests Includes necessary mathematical background to ensure it is self-contained.
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Subjects
Geometric analysis, Combinatorial analysis, Mathematical statistics, Multivariate analysis, Statistical inference, Statistics, Analyse géométrique, Analyse combinatoire, MATHEMATICS / Calculus, MATHEMATICS / Mathematical Analysis, MATHEMATICS / Probability & Statistics / General, MATHEMATICS / CombinatoricsEdition | Availability |
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1
Combinatorial Inference in Geometric Data Analysis
2021, Taylor & Francis Group
in English
1032093730 9781032093734
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2
Combinatorial Inference in Geometric Data Analysis
2019, Taylor & Francis Group
in English
1351641824 9781351641821
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3
Combinatorial Inference in Geometric Data Analysis
February 22, 2019, Chapman and Hall/CRC, Taylor & Francis Group
Hardcover
in English
- Second edition
1498781616 9781498781619
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4
Combinatorial Inference in Geometric Data Analysis
2019, Taylor & Francis Group
in English
1351651331 9781351651332
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5
Combinatorial Inference in Geometric Data Analysis
2019, Taylor & Francis Group
in English
1498781624 9781498781626
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Book Details
Edition Notes
First ed. was published in 2017.
Includes bibliographical references (pages 245-249) and indexes.
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Work Description
This book covers methods for statistical inference in geometric data analysis based on a combinatorial framework. These methods enable the researcher to answer certain questions that cannot be answered by statistical models due to the underlying assumptions. It presents all the methodology, together with detailed case studies to illustrate the potential applications. R code is provided in the book for implementation of the methodology.
This book is suitable for researchers and students of multivariate statistics, as well as applied researchers of various scientific disciplines. It could be used for a specialized course taught at either master or PhD level.
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Feedback?December 16, 2022 | Edited by MARC Bot | import existing book |
September 21, 2021 | Edited by ImportBot | import existing book |
October 2, 2019 | Edited by Kaustubh Chakraborty | Added new cover |
October 2, 2019 | Edited by Kaustubh Chakraborty | Added new book |
October 2, 2019 | Created by Kaustubh Chakraborty | Added new book. |