Advances in Contemporary Statistics and Econometrics

Advances in Contemporary Statistics and Econometrics
Author: Abdelaati Daouia,Anne Ruiz-Gazen
Publsiher: Springer Nature
Total Pages: 713
Release: 2021-06-14
Genre: Mathematics
ISBN: 9783030732493

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This book presents a unique collection of contributions on modern topics in statistics and econometrics, written by leading experts in the respective disciplines and their intersections. It addresses nonparametric statistics and econometrics, quantiles and expectiles, and advanced methods for complex data, including spatial and compositional data, as well as tools for empirical studies in economics and the social sciences. The book was written in honor of Christine Thomas-Agnan on the occasion of her 65th birthday. Given its scope, it will appeal to researchers and PhD students in statistics and econometrics alike who are interested in the latest developments in their field.

Exploring Research Frontiers in Contemporary Statistics and Econometrics

Exploring Research Frontiers in Contemporary Statistics and Econometrics
Author: Ingrid Van Keilegom,Paul W. Wilson
Publsiher: Springer Science & Business Media
Total Pages: 276
Release: 2011-09-15
Genre: Mathematics
ISBN: 9783790823493

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This book collects contributions written by well-known statisticians and econometricians to acknowledge Léopold Simar’s far-reaching scientific impact on Statistics and Econometrics throughout his career. The papers contained herein were presented at a conference in Louvain-la-Neuve in May 2009 in honor of his retirement. The contributions cover a broad variety of issues surrounding frontier estimation, which Léopold Simar has contributed much to over the past two decades, as well as related issues such as semiparametric regression and models for censored data. This book collects contributions written by well-known statisticians and econometricians to acknowledge Léopold Simar’s far-reaching scientific impact on Statistics and Econometrics throughout his career. The papers contained herein were presented at a conference in Louvain-la-Neuve in May 2009 in honor of his retirement. The contributions cover a broad variety of issues surrounding frontier estimation, which Léopold Simar has contributed much to over the past two decades, as well as related issues such as semiparametric regression and models for censored data.

Modern Econometric Analysis

Modern Econometric Analysis
Author: Olaf Hübler,Joachim Frohn
Publsiher: Springer Science & Business Media
Total Pages: 236
Release: 2007-04-29
Genre: Business & Economics
ISBN: 9783540326939

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In this book leading German econometricians in different fields present survey articles of the most important new methods in econometrics. The book gives an overview of the field and it shows progress made in recent years and remaining problems.

Advances in Spatial Econometrics

Advances in Spatial Econometrics
Author: Luc Anselin,Raymond Florax,Sergio J. Rey
Publsiher: Springer Science & Business Media
Total Pages: 516
Release: 2013-03-09
Genre: Business & Economics
ISBN: 9783662056172

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World-renowned experts in spatial statistics and spatial econometrics present the latest advances in specification and estimation of spatial econometric models. This includes information on the development of tools and software, and various applications. The text introduces new tests and estimators for spatial regression models, including discrete choice and simultaneous equation models. The performance of techniques is demonstrated through simulation results and a wide array of applications related to economic growth, international trade, knowledge externalities, population-employment dynamics, urban crime, land use, and environmental issues. An exciting new text for academics with a theoretical interest in spatial statistics and econometrics, and for practitioners looking for modern and up-to-date techniques.

Advances in Econometrics Operational Research Data Science and Actuarial Studies

Advances in Econometrics  Operational Research  Data Science and Actuarial Studies
Author: M. Kenan Terzioğlu
Publsiher: Springer Nature
Total Pages: 607
Release: 2022-01-17
Genre: Business & Economics
ISBN: 9783030852542

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This volume presents techniques and theories drawn from mathematics, statistics, computer science, and information science to analyze problems in business, economics, finance, insurance, and related fields. The authors present proposals for solutions to common problems in related fields. To this end, they are showing the use of mathematical, statistical, and actuarial modeling, and concepts from data science to construct and apply appropriate models with real-life data, and employ the design and implementation of computer algorithms to evaluate decision-making processes. This book is unique as it associates data science - data-scientists coming from different backgrounds - with some basic and advanced concepts and tools used in econometrics, operational research, and actuarial sciences. It, therefore, is a must-read for scholars, students, and practitioners interested in a better understanding of the techniques and theories of these fields.

Recent Advances in Econometrics and Statistics

Recent Advances in Econometrics and Statistics
Author: Matteo Barigozzi,Siegfried Hörmann,Davy Paindaveine
Publsiher: Springer
Total Pages: 0
Release: 2024-10-11
Genre: Mathematics
ISBN: 3031618521

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This volume presents a unique collection of original research contributions by leading experts in several modern fields of econometrics and statistics, including high-dimensional, nonparametric and robust statistics, time series analysis and factor models. Published in honour of Marc Hallin on the occasion of his 75th birthday, it puts emphasis on the fundamental and applied topics he has significantly contributed to. The volume starts with an annotated bibliography that mainly catalogues his contributions to distribution-free rank-based and quantile-oriented inference and to time series analysis. The main part of the book collects 29 authoritative contributions by some of Marc Hallin’s main collaborators, organized into six parts: rank- and depth-based methods, asymptotic statistics, quantile regression, econometrics, statistical modelling and related topics, and high-dimensional and non-Euclidean data.

Advances in Latent Variables

Advances in Latent Variables
Author: Maurizio Carpita,Eugenio Brentari,El Mostafa Qannari
Publsiher: Springer
Total Pages: 285
Release: 2015-04-01
Genre: Mathematics
ISBN: 9783319029672

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The book, belonging to the series “Studies in Theoretical and Applied Statistics– Selected Papers from the Statistical Societies”, presents a peer-reviewed selection of contributions on relevant topics organized by the editors on the occasion of the SIS 2013 Statistical Conference "Advances in Latent Variables. Methods, Models and Applications", held at the Department of Economics and Management of the University of Brescia from June 19 to 21, 2013. The focus of the book is on advances in statistical methods for analyses with latent variables. In fact, in recent years, there has been increasing interest in this broad research area from both a theoretical and an applied point of view, as the statistical latent variable approach allows the effective modeling of complex real-life phenomena in a wide range of research fields. A major goal of the volume is to bring together articles written by statisticians from different research fields, which present different approaches and experiences related to the analysis of unobservable variables and the study of the relationships between them.

Advanced Statistical Methods in Data Science

Advanced Statistical Methods in Data Science
Author: Ding-Geng Chen,Jiahua Chen,Xuewen Lu,Grace Y. Yi,Hao Yu
Publsiher: Springer
Total Pages: 222
Release: 2016-11-30
Genre: Mathematics
ISBN: 9789811025945

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This book gathers invited presentations from the 2nd Symposium of the ICSA- CANADA Chapter held at the University of Calgary from August 4-6, 2015. The aim of this Symposium was to promote advanced statistical methods in big-data sciences and to allow researchers to exchange ideas on statistics and data science and to embraces the challenges and opportunities of statistics and data science in the modern world. It addresses diverse themes in advanced statistical analysis in big-data sciences, including methods for administrative data analysis, survival data analysis, missing data analysis, high-dimensional and genetic data analysis, longitudinal and functional data analysis, the design and analysis of studies with response-dependent and multi-phase designs, time series and robust statistics, statistical inference based on likelihood, empirical likelihood and estimating functions. The editorial group selected 14 high-quality presentations from this successful symposium and invited the presenters to prepare a full chapter for this book in order to disseminate the findings and promote further research collaborations in this area. This timely book offers new methods that impact advanced statistical model development in big-data sciences.