Mathematical Statistics with Applications in R 2nd Edition Ramachandran Solutions Manual
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Mathematical Statistics with Applications in R 2nd Edition Ramachandran Solutions Manual.
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Mathematical Statistics with Applications in R 2nd Edition Ramachandran Solutions Manual
Product details:
- ISBN-10 : 0124171133
- ISBN-13 : 978-0124171138
- Author: Kandethody M. Ramachandran
Mathematical Statistics with Applications in R, Second Edition, offers a modern calculus-based theoretical introduction to mathematical statistics and applications. The book covers many modern statistical computational and simulation concepts that are not covered in other texts, such as the Jackknife, bootstrap methods, the EM algorithms, and Markov chain Monte Carlo (MCMC) methods such as the Metropolis algorithm, Metropolis-Hastings algorithm and the Gibbs sampler. By combining the discussion on the theory of statistics with a wealth of real-world applications, the book helps students to approach statistical problem solving in a logical manner.This book provides a step-by-step procedure to solve real problems, making the topic more accessible. It includes goodness of fit methods to identify the probability distribution that characterizes the probabilistic behavior or a given set of data. Exercises as well as practical, real-world chapter projects are included, and each chapter has an optional section on using Minitab, SPSS and SAS commands. The text also boasts a wide array of coverage of ANOVA, nonparametric, MCMC, Bayesian and empirical methods; solutions to selected problems; data sets; and an image bank for students.Advanced undergraduate and graduate students taking a one or two semester mathematical statistics course will find this book extremely useful in their studies.
Table contents:
1. Descriptive Statistics
2. Basic Concepts from Probability Theory
3. Additional Topics in Probability
4. Sampling Distributions
5. Estimation
6. Properties of Point Estimation, Hypothesis Testing
7. Linear Regression Models
8. Design of Experiments
9. Analysis of variance
10. Bayesian Estimation and Inference
11. Nonparametric tests
12. Empirical Methods
13. Time-series Analysis
14. Overview of Statistical Applications
15. Appendices
16. Selected Solutions to Exercises
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