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David Ruppert - Statistics and Data Analysis for Financial Engineering: with R examples - 9781493926138 - V9781493926138
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Statistics and Data Analysis for Financial Engineering: with R examples

€ 149.39
FREE Delivery in Ireland
Description for Statistics and Data Analysis for Financial Engineering: with R examples Hardback. Series: Springer Texts in Statistics. Num Pages: 719 pages, 113 black & white illustrations, 108 colour illustrations, 15 black & white tables, biogr. BIC Classification: KFF; PBT. Category: (G) General (US: Trade). Dimension: 167 x 246 x 34. Weight in Grams: 1186.

The new edition of this influential textbook, geared towards graduate or advanced undergraduate students, teaches the statistics necessary for financial engineering. In doing so, it illustrates concepts using financial markets and economic data, R Labs with real-data exercises, and graphical and analytic methods for modeling and diagnosing modeling errors. These methods are critical because financial engineers now have access to enormous quantities of data. To make use of this data, the powerful methods in this book for working with quantitative information, particularly about volatility and risks, are essential. Strengths of this fully-revised edition include major additions to the R code ... Read more

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Product Details

Publisher
Springer-Verlag New York Inc.
Format
Hardback
Publication date
2015
Series
Springer Texts in Statistics
Condition
New
Number of Pages
719
Place of Publication
New York, United States
ISBN
9781493926138
SKU
V9781493926138
Shipping Time
Usually ships in 15 to 20 working days
Ref
99-15

About David Ruppert
David Ruppert is Andrew Schultz, Jr., Professor of Engineering and Professor of Statistical Science, School of Operations Research and Information Engineering and Department of Statistical Science, Cornell University, where he teaches statistics and financial engineering and is a member of the Program in Financial Engineering. His research areas include asymptotic theory, semiparametric regression, functional data analysis, biostatistics, model calibration, measurement ... Read more

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