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Statistical Learning and Modeling in Data Analysis: Methods and Applications by

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Item specifics

Condition
New: A new, unread, unused book in perfect condition with no missing or damaged pages. See the ...
ISBN-13
9783030699437
Book Title
Statistical Learning and Modeling in Data Analysis
ISBN
9783030699437
Publication Year
2021
Series
Studies in Classification, Data Analysis, and Knowledge Organization Ser.
Type
Textbook
Format
Trade Paperback
Language
English
Publication Name
Statistical Learning and Modeling in Data Analysis : Methods and Applications
Author
Giovanni C. Porzio
Item Length
9.3in
Publisher
Springer International Publishing A&G
Item Width
6.1in
Item Weight
10.7 Oz
Number of Pages
VIII, 182 Pages

About this product

Product Information

The contributions gathered in this book focus on modern methods for statistical learning and modeling in data analysis and present a series of engaging real-world applications. The book covers numerous research topics, ranging from statistical inference and modeling to clustering and factorial methods, from directional data analysis to time series analysis and small area estimation. The applications reflect new analyses in a variety of fields, including medicine, finance, engineering, marketing and cyber risk. The book gathers selected and peer-reviewed contributions presented at the 12th Scientific Meeting of the Classification and Data Analysis Group of the Italian Statistical Society (CLADAG 2019), held in Cassino, Italy, on September 11-13, 2019. CLADAG promotes advanced methodological research in multivariate statistics with a special focus on data analysis and classification, and supports the exchange and dissemination of ideas, methodological concepts, numerical methods, algorithms, and computational and applied results. This book, true to CLADAG's goals, is intended for researchers and practitioners who are interested in the latest developments and applications in the field of data analysis and classification.

Product Identifiers

Publisher
Springer International Publishing A&G
ISBN-10
3030699439
ISBN-13
9783030699437
eBay Product ID (ePID)
13050409487

Product Key Features

Author
Giovanni C. Porzio
Publication Name
Statistical Learning and Modeling in Data Analysis : Methods and Applications
Format
Trade Paperback
Language
English
Publication Year
2021
Series
Studies in Classification, Data Analysis, and Knowledge Organization Ser.
Type
Textbook
Number of Pages
VIII, 182 Pages

Dimensions

Item Length
9.3in
Item Width
6.1in
Item Weight
10.7 Oz

Additional Product Features

Number of Volumes
1 Vol.
Lc Classification Number
Qa276-280
Table of Content
Chapter 1 - Interpreting Eects in Generalized Linear Modeling (Alan Agresti, Claudia Tarantola, and Roberta Varriale).- Chapter 2 - ACE, AVAS and Robust Data Transformations: Performance of Investment Funds (Anthony C. Atkinson, Marco Riani, Aldo Corbellini, and Gianluca Morelli).- Chapter 3 - Predictive Principal Component Analysis (Simona Balzano, Maja Bozic, Laura Marcis, and Renato Salvatore).- Chapter 4 - Robust model-based learning to discover new wheat varieties and discriminate adulterated kernels in X-ray images (Andrea Cappozzo, Francesca Greselin, and Thomas Brendan Murphy).- Chapter 5 - A dynamic model for ordinal time series: an application to consumers' perceptions of ination (Marcella Corduas).- Chapter 6 - Deep learning to jointly analyze images and clinical data for disease detection (Federica Crobu and Agostino Di Ciaccio).- Chapter 7 -Studying Aliation Networks through Cluster CA and Blockmodeling (Daniela D'Ambrosio, Marco Serino, and Giancarlo Ragozini).- Chapter 8 - Sectioning Procedure on Geostatistical Indices Series of Pavement Road ProFiles (Mauro D'Apuzzo, Rose-Line Spacagna, Azzurra Evangelisti, Daniela Santilli, and Vittorio Nicolosi).- Chapter 9 - Directional supervised learning through depth functions: an application to ECG waves analysis (Houyem Demni).- Chapter 10 - Penalized vs. contrained approaches for clusterwise linear regression modelling (Roberto Di Mari, Stefano Antonio Gattone, and Roberto Rocci).- Chapter 11 - Eect measures for group comparisons in a two-component mixture model: a cyber risk analysis (Maria Iannario and Claudia Tarantola).- Chapter 12 - A Cramér-von Mises test of uniformity on the hypersphere (Eduardo García-Portugués, Paula Navarro-Esteban, and Juan Antonio Cuesta-Albertos).- Chapter 13 - On mean and/or variance mixtures of normal distributions (Sharon X. Lee and Georey J. McLachlan).- Chapter 14 - Robust depth-based inference in elliptical models (Stanislav Nagy and Jirí Dvorák).- Chapter 15 - Latent class analysis for the derivation of marketing decisions: An empirical study for BEV battery manufacturers (Friederike Paetz).- Chapter 16 - Small Area Estimation Diagnostics: the Case of the Fay-Herriot Model (Maria Chiara Pagliarella).- Chapter 17 - A comparison between methods to cluster mixed-type data: Gaussian mixtures versus Gower distance (Monia Ranalli and Roberto Rocci).- Chapter 18 - Exploring the gender gap in Erasmus student mobility ows (Marialuisa Restaino, Ilaria Primerano, and Maria Prosperina Vitale).
Copyright Date
2021
Topic
Mathematical & Statistical Software, Probability & Statistics / General, Databases / Data Mining
Illustrated
Yes
Genre
Computers, Mathematics

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