Description: R and Data Mining Examples and Case Studies Guides R users into data mining and helps data miners to learn to use R in their work Yanchang Zhao (Author) 9780123969637, Elsevier Science Hardback, published 31 January 2013 256 pages 22.9 x 15.2 x 2.1 cm, 0.57 kg R and Data Mining introduces researchers, post-graduate students, and analysts to data mining using R, a free software environment for statistical computing and graphics. The book provides practical methods for using R in applications from academia to industry to extract knowledge from vast amounts of data. Readers will find this book a valuable guide to the use of R in tasks such as classification and prediction, clustering, outlier detection, association rules, sequence analysis, text mining, social network analysis, sentiment analysis, and more.Data mining techniques are growing in popularity in a broad range of areas, from banking to insurance, retail, telecom, medicine, research, and government. This book focuses on the modeling phase of the data mining process, also addressing data exploration and model evaluation.With three in-depth case studies, a quick reference guide, bibliography, and links to a wealth of online resources, R and Data Mining is a valuable, practical guide to a powerful method of analysis. Introduction Introduction, Data mining R Datasets used in this book Data Loading and Exploration Data Import/Export Save/Load R Data Import from and Export to .CSV Files Import Data from SAS Import/Export via ODBC Data Exploration Have a Look at Data Explore Individual Variables Explore Multiple Variables More Exploration Save Charts as Files Data Mining Examples Decision Trees Building Decision Trees with Package party Building Decision Trees with Package rpart Random Forest Regression Linear Regression Logistic Regression Generalized Linear Regression Non-linear Regression Clustering K-means Clustering Hierarchical Clustering Density-based Clustering Outlier Detection Time Series Analysis Time Series Decomposition Time Series Forecast Association Rules Sequential Patterns Text Mining Social Network Analysis Case Studies Case Study I: Analysis and Forecasting of House Price Indices Reading Data from a CSV File Data Exploration Time Series Decomposition Time Series Forecasting Discussion Case Study II: Customer Response Prediction Case Study III: Risk Rating using Decision Tree with Limited Resources Customer Behaviour Prediction and Intervention Appendix Online Resources R Reference Card for Data Mining Bibliography Subject Areas: Data mining [UNF], Programming & scripting languages: general [UMX], Probability & statistics [PBT]
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BIC Subject Area 1: Data mining [UNF]
BIC Subject Area 2: Programming & scripting languages: general [UMX]
BIC Subject Area 3: Probability & statistics [PBT]
Number of Pages: 256 Pages
Language: English
Publication Name: R and Data Mining: Examples and Case Studies
Publisher: Elsevier Science Publishing Co INC International Concepts
Publication Year: 2013
Subject: Computer Science, Mathematics
Item Height: 229 mm
Item Weight: 570 g
Type: Textbook
Author: Yanchang Zhao
Item Width: 152 mm
Format: Hardcover