An author and permuted title index to selected statistical journals; by B.L. Joiner, N.F.Laubscher, E.S.Brown, etc

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ISBN 13 :
Total Pages : 510 pages
Book Rating : 4.:/5 (933 download)

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Book Synopsis An author and permuted title index to selected statistical journals; by B.L. Joiner, N.F.Laubscher, E.S.Brown, etc by :

Download or read book An author and permuted title index to selected statistical journals; by B.L. Joiner, N.F.Laubscher, E.S.Brown, etc written by and published by . This book was released on 1970 with total page 510 pages. Available in PDF, EPUB and Kindle. Book excerpt:

An Author and Permuted Title Index to Selected Statistical Journals

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ISBN 13 :
Total Pages : 512 pages
Book Rating : 4.3/5 (91 download)

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Book Synopsis An Author and Permuted Title Index to Selected Statistical Journals by : Brian L. Joiner

Download or read book An Author and Permuted Title Index to Selected Statistical Journals written by Brian L. Joiner and published by . This book was released on 1970 with total page 512 pages. Available in PDF, EPUB and Kindle. Book excerpt: All articles, notes, queries, corrigenda, and obituaries appearing in the following journals during the indicated years are indexed: Annals of mathematical statistics, 1961-1969; Biometrics, 1965-1969#3; Biometrics, 1951-1969; Journal of the American Statistical Association, 1956-1969; Journal of the Royal Statistical Society, Series B, 1954-1969,#2; South African statistical journal, 1967-1969,#2; Technometrics, 1959-1969.--p.iv.

An Author and Permuted Title Index to Selected Statistical Journals. Joiner A.o

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ISBN 13 :
Total Pages : 506 pages
Book Rating : 4.:/5 (874 download)

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Book Synopsis An Author and Permuted Title Index to Selected Statistical Journals. Joiner A.o by : B.L. Joiner

Download or read book An Author and Permuted Title Index to Selected Statistical Journals. Joiner A.o written by B.L. Joiner and published by . This book was released on 1970 with total page 506 pages. Available in PDF, EPUB and Kindle. Book excerpt:

An Author and Permuted Title Index to Selected Statistical Journals

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ISBN 13 :
Total Pages : 520 pages
Book Rating : 4./5 ( download)

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Book Synopsis An Author and Permuted Title Index to Selected Statistical Journals by : Brian L. Joiner

Download or read book An Author and Permuted Title Index to Selected Statistical Journals written by Brian L. Joiner and published by . This book was released on 1970 with total page 520 pages. Available in PDF, EPUB and Kindle. Book excerpt:

An Author and Permuted Title Index to Selected Statistical Journals

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Publisher :
ISBN 13 :
Total Pages : 506 pages
Book Rating : 4.:/5 (636 download)

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Book Synopsis An Author and Permuted Title Index to Selected Statistical Journals by :

Download or read book An Author and Permuted Title Index to Selected Statistical Journals written by and published by . This book was released on 1970 with total page 506 pages. Available in PDF, EPUB and Kindle. Book excerpt:

An author and permuted title index to selected statistical journals

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Publisher :
ISBN 13 :
Total Pages : 506 pages
Book Rating : 4.:/5 (246 download)

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Book Synopsis An author and permuted title index to selected statistical journals by : Brian L. Joiner

Download or read book An author and permuted title index to selected statistical journals written by Brian L. Joiner and published by . This book was released on 1970 with total page 506 pages. Available in PDF, EPUB and Kindle. Book excerpt:

An Author and Permuted Title Index to Selected Statistical Journals

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Publisher :
ISBN 13 :
Total Pages : 506 pages
Book Rating : 4.:/5 (664 download)

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Book Synopsis An Author and Permuted Title Index to Selected Statistical Journals by : United States. National Bureau of Standards

Download or read book An Author and Permuted Title Index to Selected Statistical Journals written by United States. National Bureau of Standards and published by . This book was released on 1970 with total page 506 pages. Available in PDF, EPUB and Kindle. Book excerpt:

An Author and Permuted Titre Index to Selected Statistical Journals

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Publisher :
ISBN 13 :
Total Pages : 506 pages
Book Rating : 4.:/5 (489 download)

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Book Synopsis An Author and Permuted Titre Index to Selected Statistical Journals by :

Download or read book An Author and Permuted Titre Index to Selected Statistical Journals written by and published by . This book was released on 1970 with total page 506 pages. Available in PDF, EPUB and Kindle. Book excerpt:

An Author and Permuted Tittle Index to Selected Statistical Journals

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Publisher :
ISBN 13 :
Total Pages : 506 pages
Book Rating : 4.:/5 (112 download)

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Book Synopsis An Author and Permuted Tittle Index to Selected Statistical Journals by :

Download or read book An Author and Permuted Tittle Index to Selected Statistical Journals written by and published by . This book was released on 1970 with total page 506 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Statistical Inference Via Convex Optimization

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Publisher : Princeton University Press
ISBN 13 : 0691197296
Total Pages : 655 pages
Book Rating : 4.6/5 (911 download)

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Book Synopsis Statistical Inference Via Convex Optimization by : Anatoli Juditsky

Download or read book Statistical Inference Via Convex Optimization written by Anatoli Juditsky and published by Princeton University Press. This book was released on 2020-04-07 with total page 655 pages. Available in PDF, EPUB and Kindle. Book excerpt: This authoritative book draws on the latest research to explore the interplay of high-dimensional statistics with optimization. Through an accessible analysis of fundamental problems of hypothesis testing and signal recovery, Anatoli Juditsky and Arkadi Nemirovski show how convex optimization theory can be used to devise and analyze near-optimal statistical inferences. Statistical Inference via Convex Optimization is an essential resource for optimization specialists who are new to statistics and its applications, and for data scientists who want to improve their optimization methods. Juditsky and Nemirovski provide the first systematic treatment of the statistical techniques that have arisen from advances in the theory of optimization. They focus on four well-known statistical problems—sparse recovery, hypothesis testing, and recovery from indirect observations of both signals and functions of signals—demonstrating how they can be solved more efficiently as convex optimization problems. The emphasis throughout is on achieving the best possible statistical performance. The construction of inference routines and the quantification of their statistical performance are given by efficient computation rather than by analytical derivation typical of more conventional statistical approaches. In addition to being computation-friendly, the methods described in this book enable practitioners to handle numerous situations too difficult for closed analytical form analysis, such as composite hypothesis testing and signal recovery in inverse problems. Statistical Inference via Convex Optimization features exercises with solutions along with extensive appendixes, making it ideal for use as a graduate text.

Bibliography of Publications

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ISBN 13 :
Total Pages : 44 pages
Book Rating : 4.3/5 ( download)

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Book Synopsis Bibliography of Publications by :

Download or read book Bibliography of Publications written by and published by . This book was released on 1966 with total page 44 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Statistical Machine Learning

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Publisher : CRC Press
ISBN 13 : 1351051490
Total Pages : 525 pages
Book Rating : 4.3/5 (51 download)

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Book Synopsis Statistical Machine Learning by : Richard Golden

Download or read book Statistical Machine Learning written by Richard Golden and published by CRC Press. This book was released on 2020-06-24 with total page 525 pages. Available in PDF, EPUB and Kindle. Book excerpt: The recent rapid growth in the variety and complexity of new machine learning architectures requires the development of improved methods for designing, analyzing, evaluating, and communicating machine learning technologies. Statistical Machine Learning: A Unified Framework provides students, engineers, and scientists with tools from mathematical statistics and nonlinear optimization theory to become experts in the field of machine learning. In particular, the material in this text directly supports the mathematical analysis and design of old, new, and not-yet-invented nonlinear high-dimensional machine learning algorithms. Features: Unified empirical risk minimization framework supports rigorous mathematical analyses of widely used supervised, unsupervised, and reinforcement machine learning algorithms Matrix calculus methods for supporting machine learning analysis and design applications Explicit conditions for ensuring convergence of adaptive, batch, minibatch, MCEM, and MCMC learning algorithms that minimize both unimodal and multimodal objective functions Explicit conditions for characterizing asymptotic properties of M-estimators and model selection criteria such as AIC and BIC in the presence of possible model misspecification This advanced text is suitable for graduate students or highly motivated undergraduate students in statistics, computer science, electrical engineering, and applied mathematics. The text is self-contained and only assumes knowledge of lower-division linear algebra and upper-division probability theory. Students, professional engineers, and multidisciplinary scientists possessing these minimal prerequisites will find this text challenging yet accessible. About the Author: Richard M. Golden (Ph.D., M.S.E.E., B.S.E.E.) is Professor of Cognitive Science and Participating Faculty Member in Electrical Engineering at the University of Texas at Dallas. Dr. Golden has published articles and given talks at scientific conferences on a wide range of topics in the fields of both statistics and machine learning over the past three decades. His long-term research interests include identifying conditions for the convergence of deterministic and stochastic machine learning algorithms and investigating estimation and inference in the presence of possibly misspecified probability models.

Practical Bayesian Inference

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Publisher : Cambridge University Press
ISBN 13 : 1108127673
Total Pages : 306 pages
Book Rating : 4.1/5 (81 download)

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Book Synopsis Practical Bayesian Inference by : Coryn A. L. Bailer-Jones

Download or read book Practical Bayesian Inference written by Coryn A. L. Bailer-Jones and published by Cambridge University Press. This book was released on 2017-04-27 with total page 306 pages. Available in PDF, EPUB and Kindle. Book excerpt: Science is fundamentally about learning from data, and doing so in the presence of uncertainty. This volume is an introduction to the major concepts of probability and statistics, and the computational tools for analysing and interpreting data. It describes the Bayesian approach, and explains how this can be used to fit and compare models in a range of problems. Topics covered include regression, parameter estimation, model assessment, and Monte Carlo methods, as well as widely used classical methods such as regularization and hypothesis testing. The emphasis throughout is on the principles, the unifying probabilistic approach, and showing how the methods can be implemented in practice. R code (with explanations) is included and is available online, so readers can reproduce the plots and results for themselves. Aimed primarily at undergraduate and graduate students, these techniques can be applied to a wide range of data analysis problems beyond the scope of this work.

Model-Based Clustering and Classification for Data Science

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Publisher : Cambridge University Press
ISBN 13 : 1108640591
Total Pages : 447 pages
Book Rating : 4.1/5 (86 download)

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Book Synopsis Model-Based Clustering and Classification for Data Science by : Charles Bouveyron

Download or read book Model-Based Clustering and Classification for Data Science written by Charles Bouveyron and published by Cambridge University Press. This book was released on 2019-07-25 with total page 447 pages. Available in PDF, EPUB and Kindle. Book excerpt: Cluster analysis finds groups in data automatically. Most methods have been heuristic and leave open such central questions as: how many clusters are there? Which method should I use? How should I handle outliers? Classification assigns new observations to groups given previously classified observations, and also has open questions about parameter tuning, robustness and uncertainty assessment. This book frames cluster analysis and classification in terms of statistical models, thus yielding principled estimation, testing and prediction methods, and sound answers to the central questions. It builds the basic ideas in an accessible but rigorous way, with extensive data examples and R code; describes modern approaches to high-dimensional data and networks; and explains such recent advances as Bayesian regularization, non-Gaussian model-based clustering, cluster merging, variable selection, semi-supervised and robust classification, clustering of functional data, text and images, and co-clustering. Written for advanced undergraduates in data science, as well as researchers and practitioners, it assumes basic knowledge of multivariate calculus, linear algebra, probability and statistics.

A Panorama of Statistics

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Publisher : John Wiley & Sons
ISBN 13 : 1119075823
Total Pages : 338 pages
Book Rating : 4.1/5 (19 download)

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Book Synopsis A Panorama of Statistics by : Eric Sowey

Download or read book A Panorama of Statistics written by Eric Sowey and published by John Wiley & Sons. This book was released on 2017-01-30 with total page 338 pages. Available in PDF, EPUB and Kindle. Book excerpt: Dieses Buch nimmt den Leser mit auf eine anregende Reise rund um die Welt der Statistik. Auf eine ganz andere Art werden Theorie und Praxis Dozenten, Studenten und Praktikern nahe gebracht. Auf jeder Etappe dieser Reise untersuchen die Autoren ungewöhnliche und skurille Aspekte der Statistik, stellen historische, biographische und philosophische Dimensionen heraus. Die einzelnen Kapitel beginnen mit einem Ausblick auf das Thema, oftmals aus unterschiedlichen Blickwinkeln. Darauf folgen fünf Fragen, die zum Nachdenken anregen. Ziel ist es, die Kenntnisse der Leser zu erweitern und zu vertiefen. Zu den Fragen gibt es auch immer wieder unterhaltsame Rätsel, mit denen spannende Paradoxa aufgelöst werden. Die Leser können ihre eigenen Entdeckungen in der Welt der Statistik mit den ausführlichen Antworten der Autoren auf die jeweiligen Fragen vergleichen.

End-to-End Data Science with SAS

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Publisher : SAS Institute
ISBN 13 : 1642958069
Total Pages : 246 pages
Book Rating : 4.6/5 (429 download)

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Book Synopsis End-to-End Data Science with SAS by : James Gearheart

Download or read book End-to-End Data Science with SAS written by James Gearheart and published by SAS Institute. This book was released on 2020-06-26 with total page 246 pages. Available in PDF, EPUB and Kindle. Book excerpt: Learn data science concepts with real-world examples in SAS! End-to-End Data Science with SAS: A Hands-On Programming Guide provides clear and practical explanations of the data science environment, machine learning techniques, and the SAS programming knowledge necessary to develop machine learning models in any industry. The book covers concepts including understanding the business need, creating a modeling data set, linear regression, parametric classification models, and non-parametric classification models. Real-world business examples and example code are used to demonstrate each process step-by-step. Although a significant amount of background information and supporting mathematics are presented, the book is not structured as a textbook, but rather it is a user’s guide for the application of data science and machine learning in a business environment. Readers will learn how to think like a data scientist, wrangle messy data, choose a model, and evaluate the model’s effectiveness. New data scientists or professionals who want more experience with SAS will find this book to be an invaluable reference. Take your data science career to the next level by mastering SAS programming for machine learning models.

Branching Process Models of Cancer

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Publisher : Springer
ISBN 13 : 3319160656
Total Pages : 73 pages
Book Rating : 4.3/5 (191 download)

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Book Synopsis Branching Process Models of Cancer by : Richard Durrett

Download or read book Branching Process Models of Cancer written by Richard Durrett and published by Springer. This book was released on 2015-06-20 with total page 73 pages. Available in PDF, EPUB and Kindle. Book excerpt: This volume develops results on continuous time branching processes and applies them to study rate of tumor growth, extending classic work on the Luria-Delbruck distribution. As a consequence, the author calculate the probability that mutations that confer resistance to treatment are present at detection and quantify the extent of tumor heterogeneity. As applications, the author evaluate ovarian cancer screening strategies and give rigorous proofs for results of Heano and Michor concerning tumor metastasis. These notes should be accessible to students who are familiar with Poisson processes and continuous time Markov chains. Richard Durrett is a mathematics professor at Duke University, USA. He is the author of 8 books, over 200 journal articles, and has supervised more than 40 Ph.D students. Most of his current research concerns the applications of probability to biology: ecology, genetics and most recently cancer.