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portada Quantitative Economics With r: A Data Science Approach
Type
Physical Book
Publisher
Year
2020
Language
English
Pages
326
Format
Hardcover
ISBN13
9789811520341
Edition No.
1

Quantitative Economics With r: A Data Science Approach

Vikram Dayal (Author) · Springer · Hardcover

Quantitative Economics With r: A Data Science Approach - Vikram Dayal

New Book

£ 126.57

  • Condition: New
Origin: U.S.A. (Import costs included in the price)
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Synopsis "Quantitative Economics With r: A Data Science Approach"

This book provides a contemporary treatment of quantitative economics, with a focus on data science. The book introduces the reader to R and RStudio, and uses expert Hadley Wickham’s tidyverse package for different parts of the data analysis workflow. After a gentle introduction to R code,  the reader’s R skills are gradually honed, with the help of  “your turn” exercises.  At the heart of data science is data, and the book equips the reader to import and wrangle data, (including network data). Very early on, the reader will begin using the popular ggplot2 package for visualizing data, even making basic maps. The use of R in understanding functions, simulating difference equations, and carrying out matrix operations is also covered. The book uses Monte Carlo simulation to understand probability and statistical inference, and the bootstrap is introduced. Causal inference is illuminated using simulation, data graphs, and R code for applications with real economic examples, covering experiments, matching, regression discontinuity, difference-in-difference, and instrumental variables. The interplay of growth related data and models is presented, before the book introduces the reader to time series data analysis with graphs, simulation, and examples. Lastly, two computationally intensive methods―generalized additive models and random forests (an important and versatile machine learning method)―are introduced intuitively with applications.  The book will be of great interest to economists―students, teachers, and researchers alike―who want to learn R. It will help economics students gain an intuitive appreciation of applied economics and enjoy engaging with the material actively, while also equipping them with key data science skills.

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The book is written in English.
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