Complex Data Modeling and Computationally Intensive Statistical Methods

Complex Data Modeling and Computationally Intensive Statistical Methods
Author: Pietro Mantovan,Piercesare Secchi
Publsiher: Springer Science & Business Media
Total Pages: 164
Release: 2011-01-27
Genre: Computers
ISBN: 9788847013865

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Selected from the conference "S.Co.2009: Complex Data Modeling and Computationally Intensive Methods for Estimation and Prediction," these 20 papers cover the latest in statistical methods and computational techniques for complex and high dimensional datasets.

Advances in Complex Data Modeling and Computational Methods in Statistics

Advances in Complex Data Modeling and Computational Methods in Statistics
Author: Anna Maria Paganoni,Piercesare Secchi
Publsiher: Springer
Total Pages: 209
Release: 2014-11-04
Genre: Mathematics
ISBN: 9783319111490

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The book is addressed to statisticians working at the forefront of the statistical analysis of complex and high dimensional data and offers a wide variety of statistical models, computer intensive methods and applications: network inference from the analysis of high dimensional data; new developments for bootstrapping complex data; regression analysis for measuring the downsize reputational risk; statistical methods for research on the human genome dynamics; inference in non-euclidean settings and for shape data; Bayesian methods for reliability and the analysis of complex data; methodological issues in using administrative data for clinical and epidemiological research; regression models with differential regularization; geostatistical methods for mobility analysis through mobile phone data exploration. This volume is the result of a careful selection among the contributions presented at the conference "S.Co.2013: Complex data modeling and computationally intensive methods for estimation and prediction" held at the Politecnico di Milano, 2013. All the papers published here have been rigorously peer-reviewed.

Complex Data Modeling and Computationally Intensive Statistical Methods

Complex Data Modeling and Computationally Intensive Statistical Methods
Author: Anonim
Publsiher: Unknown
Total Pages: 176
Release: 2011-08-14
Genre: Electronic Book
ISBN: 8847013925

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Complex Models and Computational Methods in Statistics

Complex Models and Computational Methods in Statistics
Author: Matteo Grigoletto,Francesco Lisi,Sonia Petrone
Publsiher: Springer Science & Business Media
Total Pages: 228
Release: 2013-01-26
Genre: Mathematics
ISBN: 9788847028715

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The use of computational methods in statistics to face complex problems and highly dimensional data, as well as the widespread availability of computer technology, is no news. The range of applications, instead, is unprecedented. As often occurs, new and complex data types require new strategies, demanding for the development of novel statistical methods and suggesting stimulating mathematical problems. This book is addressed to researchers working at the forefront of the statistical analysis of complex systems and using computationally intensive statistical methods.

S Co 2009 Sixth Conference Complex Data Modeling and Computationally Intensive Statistical Methods for Estimation and Prediction

S  Co  2009  Sixth Conference  Complex Data Modeling and Computationally Intensive Statistical Methods for Estimation and Prediction
Author: Anonim
Publsiher: Maggioli Editore
Total Pages: 493
Release: 2009
Genre: Business & Economics
ISBN: 9788838743856

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Statistical Modeling and Analysis for Complex Data Problems

Statistical Modeling and Analysis for Complex Data Problems
Author: Pierre Duchesne,Bruno Rémillard
Publsiher: Springer Science & Business Media
Total Pages: 354
Release: 2005-04-12
Genre: Business & Economics
ISBN: 0387245545

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STATISTICAL MODELING AND ANALYSIS FOR COMPLEX DATA PROBLEMS treats some of today’s more complex problems and it reflects some of the important research directions in the field. Twenty-nine authors—largely from Montreal’s GERAD Multi-University Research Center and who work in areas of theoretical statistics, applied statistics, probability theory, and stochastic processes—present survey chapters on various theoretical and applied problems of importance and interest to researchers and students across a number of academic domains. Some of the areas and topics examined in the volume are: an analysis of complex survey data, the 2000 American presidential election in Florida, data mining, estimation of uncertainty for machine learning algorithms, interacting stochastic processes, dependent data & copulas, Bayesian analysis of hazard rates, re-sampling methods in a periodic replacement problem, statistical testing in genetics and for dependent data, statistical analysis of time series analysis, theoretical and applied stochastic processes, and an efficient non linear filtering algorithm for the position detection of multiple targets. The book examines the methods and problems from a modeling perspective and surveys the state of current research on each topic and provides direction for further research exploration of the area.

Statistical Methods and Modeling of Seismogenesis

Statistical Methods and Modeling of Seismogenesis
Author: Nikolaos Limnios,Eleftheria Papadimitriou,George Tsaklidis
Publsiher: John Wiley & Sons
Total Pages: 336
Release: 2021-03-31
Genre: Social Science
ISBN: 9781119825036

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The study of earthquakes is a multidisciplinary field, an amalgam of geodynamics, mathematics, engineering and more. The overriding commonality between them all is the presence of natural randomness. Stochastic studies (probability, stochastic processes and statistics) can be of different types, for example, the black box approach (one state), the white box approach (multi-state), the simulation of different aspects, and so on. This book has the advantage of bringing together a group of international authors, known for their earthquake-specific approaches, to cover a wide array of these myriad aspects. A variety of topics are presented, including statistical nonparametric and parametric methods, a multi-state system approach, earthquake simulators, post-seismic activity models, time series Markov models with regression, scaling properties and multifractal approaches, selfcorrecting models, the linked stress release model, Markovian arrival models, Poisson-based detection techniques, change point detection techniques on seismicity models, and, finally, semi-Markov models for earthquake forecasting.

Statistical Models for Data Analysis

Statistical Models for Data Analysis
Author: Paolo Giudici,Salvatore Ingrassia,Maurizio Vichi
Publsiher: Springer Science & Business Media
Total Pages: 419
Release: 2013-07-01
Genre: Mathematics
ISBN: 9783319000329

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The papers in this book cover issues related to the development of novel statistical models for the analysis of data. They offer solutions for relevant problems in statistical data analysis and contain the explicit derivation of the proposed models as well as their implementation. The book assembles the selected and refereed proceedings of the biannual conference of the Italian Classification and Data Analysis Group (CLADAG), a section of the Italian Statistical Society. ​