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Analyzing Financial Data and Implementing Financial Models Using R

Springer Texts in Business and Economics

By (author) Clifford S. Ang
Format: Paperback / softback
Publisher: Springer International Publishing AG, Cham, Switzerland
Published: 6th Oct 2016
Dimensions: w 156mm h 234mm d 19mm
Weight: 517g
ISBN-10: 331935731X
ISBN-13: 9783319357317
Barcode No: 9783319357317
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Synopsis
This book is a comprehensive introduction to financial modeling that teaches advanced undergraduate and graduate students in finance and economics how to use R to analyze financial data and implement financial models. This text will show students how to obtain publicly available data, manipulate such data, implement the models, and generate typical output expected for a particular analysis. This text aims to overcome several common obstacles in teaching financial modeling. First, most texts do not provide students with enough information to allow them to implement models from start to finish. In this book, we walk through each step in relatively more detail and show intermediate R output to help students make sure they are implementing the analyses correctly. Second, most books deal with sanitized or clean data that have been organized to suit a particular analysis. Consequently, many students do not know how to deal with real-world data or know how to apply simple data manipulation techniques to get the real-world data into a usable form. This book will expose students to the notion of data checking and make them aware of problems that exist when using real-world data. Third, most classes or texts use expensive commercial software or toolboxes. In this text, we use R to analyze financial data and implement models. R and the accompanying packages used in the text are freely available; therefore, any code or models we implement do not require any additional expenditure on the part of the student. Demonstrating rigorous techniques applied to real-world data, this text covers a wide spectrum of timely and practical issues in financial modeling, including return and risk measurement, portfolio management, options pricing, and fixed income analysis.

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"This book is aimed at students in finance and economics who are beginners to the R statistical programming language. ... We recommend the book for its intended audience, plus perhaps personal investors who want to experiment in R with portfolio optimization and simulation studies of likely ranges of securities." (Lauren Burr and Tom Burr, Technometrics, Vol. 58 (2), April, 2016)