Rajan Chattamvelli Ramalingam Shanmugam Chattamvelli Descriptive Statistics for Scientists and Engineers

Descriptive Statistics for Scientists and Engineers

von Rajan Chattamvelli Ramalingam Shanmugam

Applications in R

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Beschreibung

This book introduces descriptive statistics and covers a broad range of topics of interest to students and researchers in various applied science disciplines. This includes measures of location, spread, skewness, and kurtosis; absolute and relative measures; and classification of spread, skewness, and kurtosis measures, L-moment based measures, van Zwet ordering of kurtosis, and multivariate kurtosis. Several novel topics are discussed including the recursive algorithm for sample variance; simplification of complicated summation expressions; updating formulas for sample geometric, harmonic and weighted means; divide-and-conquer algorithms for sample variance and covariance; L-skewness; spectral kurtosis, etc. A large number of exercises are included in each chapter that are drawn from various engineering fields along with examples that are illustrated using the R programming language. Basic concepts are introduced before moving on to computational aspects.  Some applications in bioinformatics, finance, metallurgy, pharmacokinetics (PK), solid mechanics, and signal processing are briefly discussed. Every analyst who works with numeric data will find the discussion very illuminating and easy to follow.

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This book introduces descriptive statistics and covers a broad range of topics of interest to students and researchers in various applied science disciplines. This includes measures of location, spread, skewness, and kurtosis; absolute and relative measures; and classification of spread, skewness, and kurtosis measures, L-moment based measures, van Zwet ordering of kurtosis, and multivariate kurtosis. Several novel topics are discussed including the recursive algorithm for sample variance; simplification of complicated summation expressions; updating formulas for sample geometric, harmonic and weighted means; divide-and-conquer algorithms for sample variance and covariance; L-skewness; spectral kurtosis, etc. A large number of exercises are included in each chapter that are drawn from various engineering fields along with examples that are illustrated using the R programming language. Basic concepts are introduced before moving on to computational aspects.  Some applicationsin bioinformatics, finance, metallurgy, pharmacokinetics (PK), solid mechanics, and signal processing are briefly discussed. Every analyst who works with numeric data will find the discussion very illuminating and easy to follow.
Provides exercises throughout that are illustrated via the R programming language Aids readers to build, analyze, and interpret various descriptive statistical models Presents numerous examples from various engineering fields

Autor*in

Rajan Chattamvelli

Themen in »Descriptive Statistics for Scientists and Engineers«

Recursive Algorithm for Variance Trimmed Mean Coefficient of Variation L-kurtosis Multivariate Kurtosis Spectral Kurtosis Weighted Mean R Programming Language Engineering Statistics Data Science

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Details

ISBN: 9783031323324
Verlag: Springer International Publishing
Erscheinung: 22.06.2024

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