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Big and Complex Data Analysis - Methodologies and Applications (Paperback, Softcover reprint of the original 1st ed. 2017): S.... Big and Complex Data Analysis - Methodologies and Applications (Paperback, Softcover reprint of the original 1st ed. 2017)
S. Ejaz Ahmed
R2,736 Discovery Miles 27 360 Ships in 10 - 15 working days

This volume conveys some of the surprises, puzzles and success stories in high-dimensional and complex data analysis and related fields. Its peer-reviewed contributions showcase recent advances in variable selection, estimation and prediction strategies for a host of useful models, as well as essential new developments in the field. The continued and rapid advancement of modern technology now allows scientists to collect data of increasingly unprecedented size and complexity. Examples include epigenomic data, genomic data, proteomic data, high-resolution image data, high-frequency financial data, functional and longitudinal data, and network data. Simultaneous variable selection and estimation is one of the key statistical problems involved in analyzing such big and complex data. The purpose of this book is to stimulate research and foster interaction between researchers in the area of high-dimensional data analysis. More concretely, its goals are to: 1) highlight and expand the breadth of existing methods in big data and high-dimensional data analysis and their potential for the advancement of both the mathematical and statistical sciences; 2) identify important directions for future research in the theory of regularization methods, in algorithmic development, and in methodologies for different application areas; and 3) facilitate collaboration between theoretical and subject-specific researchers.

Big and Complex Data Analysis - Methodologies and Applications (Hardcover, 1st ed. 2017): S. Ejaz Ahmed Big and Complex Data Analysis - Methodologies and Applications (Hardcover, 1st ed. 2017)
S. Ejaz Ahmed
R5,155 Discovery Miles 51 550 Ships in 10 - 15 working days

This volume conveys some of the surprises, puzzles and success stories in high-dimensional and complex data analysis and related fields. Its peer-reviewed contributions showcase recent advances in variable selection, estimation and prediction strategies for a host of useful models, as well as essential new developments in the field. The continued and rapid advancement of modern technology now allows scientists to collect data of increasingly unprecedented size and complexity. Examples include epigenomic data, genomic data, proteomic data, high-resolution image data, high-frequency financial data, functional and longitudinal data, and network data. Simultaneous variable selection and estimation is one of the key statistical problems involved in analyzing such big and complex data. The purpose of this book is to stimulate research and foster interaction between researchers in the area of high-dimensional data analysis. More concretely, its goals are to: 1) highlight and expand the breadth of existing methods in big data and high-dimensional data analysis and their potential for the advancement of both the mathematical and statistical sciences; 2) identify important directions for future research in the theory of regularization methods, in algorithmic development, and in methodologies for different application areas; and 3) facilitate collaboration between theoretical and subject-specific researchers.

Penalty, Shrinkage and Pretest Strategies - Variable Selection and Estimation (Paperback, 2014 ed.): S. Ejaz Ahmed Penalty, Shrinkage and Pretest Strategies - Variable Selection and Estimation (Paperback, 2014 ed.)
S. Ejaz Ahmed
R1,897 Discovery Miles 18 970 Ships in 10 - 15 working days

The objective of this book is to compare the statistical properties of penalty and non-penalty estimation strategies for some popular models. Specifically, it considers the full model, submodel, penalty, pretest and shrinkage estimation techniques for three regression models before presenting the asymptotic properties of the non-penalty estimators and their asymptotic distributional efficiency comparisons. Further, the risk properties of the non-penalty estimators and penalty estimators are explored through a Monte Carlo simulation study. Showcasing examples based on real datasets, the book will be useful for students and applied researchers in a host of applied fields.

The book's level of presentation and style make it accessible to a broad audience. It offers clear, succinct expositions of each estimation strategy. More importantly, it clearly describes how to use each estimation strategy for the problem at hand. The book is largely self-contained, as are the individual chapters, so that anyone interested in a particular topic or area of application may read only that specific chapter. The book is specially designed for graduate students who want to understand the foundations and concepts underlying penalty and non-penalty estimation and its applications. It is well-suited as a textbook for senior undergraduate and graduate courses surveying penalty and non-penalty estimation strategies, and can also be used as a reference book for a host of related subjects, including courses on meta-analysis. Professional statisticians will find this book to be a valuable reference work, since nearly all chapters are self-contained.

Matrices, Statistics and Big Data - Selected Contributions from IWMS 2016 (Paperback, 1st ed. 2019): S. Ejaz Ahmed, Francisco... Matrices, Statistics and Big Data - Selected Contributions from IWMS 2016 (Paperback, 1st ed. 2019)
S. Ejaz Ahmed, Francisco Carvalho, Simo Puntanen
R2,929 Discovery Miles 29 290 Ships in 10 - 15 working days

This volume features selected, refereed papers on various aspects of statistics, matrix theory and its applications to statistics, as well as related numerical linear algebra topics and numerical solution methods, which are relevant for problems arising in statistics and in big data. The contributions were originally presented at the 25th International Workshop on Matrices and Statistics (IWMS 2016), held in Funchal (Madeira), Portugal on June 6-9, 2016. The IWMS workshop series brings together statisticians, computer scientists, data scientists and mathematicians, helping them better understand each other's tools, and fostering new collaborations at the interface of matrix theory and statistics.

Matrices, Statistics and Big Data - Selected Contributions from IWMS 2016 (Hardcover, 1st ed. 2019): S. Ejaz Ahmed, Francisco... Matrices, Statistics and Big Data - Selected Contributions from IWMS 2016 (Hardcover, 1st ed. 2019)
S. Ejaz Ahmed, Francisco Carvalho, Simo Puntanen
R2,962 Discovery Miles 29 620 Ships in 10 - 15 working days

This volume features selected, refereed papers on various aspects of statistics, matrix theory and its applications to statistics, as well as related numerical linear algebra topics and numerical solution methods, which are relevant for problems arising in statistics and in big data. The contributions were originally presented at the 25th International Workshop on Matrices and Statistics (IWMS 2016), held in Funchal (Madeira), Portugal on June 6-9, 2016. The IWMS workshop series brings together statisticians, computer scientists, data scientists and mathematicians, helping them better understand each other's tools, and fostering new collaborations at the interface of matrix theory and statistics.

Big Data Analytics and Information Science for Business and Biomedical Applications II (Hardcover): S. Ejaz Ahmed, Farouk Nathoo Big Data Analytics and Information Science for Business and Biomedical Applications II (Hardcover)
S. Ejaz Ahmed, Farouk Nathoo
R1,791 R1,466 Discovery Miles 14 660 Save R325 (18%) Ships in 10 - 15 working days
Perspectives on Big Data Analysis - Methodologies and Applications (Paperback): S. Ejaz Ahmed Perspectives on Big Data Analysis - Methodologies and Applications (Paperback)
S. Ejaz Ahmed
R3,250 Discovery Miles 32 500 Ships in 12 - 17 working days

This volume contains the proceedings of the International Workshop on Perspectives on High-dimensional Data Analysis II, held May 30-June 1, 2012, at the Centre de Recherches Mathematiques, Universite de Montreal, Montreal, Quebec, Canada. This book collates applications and methodological developments in high-dimensional statistics dealing with interesting and challenging problems concerning the analysis of complex, high-dimensional data with a focus on model selection and data reduction. The chapters contained in this book deal with submodel selection and parameter estimation for an array of interesting models. The book also presents some surprising results on high-dimensional data analysis, especially when signals cannot be effectively separated from the noise, it provides a critical assessment of penalty estimation when the model may not be sparse, and it suggests alternative estimation strategies. Readers can apply the suggested methodologies to a host of applications and also can extend these methodologies in a variety of directions. This volume conveys some of the surprises, puzzles and success stories in big data analysis and related fields. This book is co-published with the Centre de Recherches Mathematiques.

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