

Statistics in Engineering by Andrew Metcalfe
Engineers are expected to design structures and machines that can operate in challenging and volatile environments, while allowing for variation in materials and noise in measurements and signals. Statistics in Engineering, Second Edition: With Examples in MATLAB and R covers the fundamentals of probability and statistics and explains how to use these basic techniques to estimate and model random variation in the context of engineering analysis and design in all types of environments.
The first eight chapters cover probability and probability distributions, graphical displays of data and descriptive statistics, combinations of random variables and propagation of error, statistical inference, bivariate distributions and correlation, linear regression on a single predictor variable, and the measurement error model. This leads to chapters including multiple regression; comparisons of several means and split-plot designs together with analysis of variance; probability models; and sampling strategies. Distinctive features include:
- All examples based on work in industry, consulting to industry, and research for industry.
- Examples and case studies include all engineering disciplines.
- Emphasis on probabilistic modeling including decision trees, Markov chains and processes, and structure functions.
- Intuitive explanations are followed by succinct mathematical justifications.
- Emphasis on random number generation that is used for stochastic simulations of engineering systems, demonstration of key concepts, and implementation of bootstrap methods for inference.
- Use of MATLAB and the open source software R, both of which have an extensive range of statistical functions for standard analyses and also enable programing of specific applications.
- Use of multiple regression for times series models and analysis of factorial and central composite designs.
- Inclusion of topics such as Weibull analysis of failure times and split-plot designs that are commonly used in industry but are not usually included in introductory textbooks.
- Experiments designed to show fundamental concepts that have been tested with large classes working in small groups.
- Website with additional materials that is regularly updated.
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Practical Statistics for Medical Research
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Statistical Rethinking
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Bayesian Data Analysis
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Introduction to Multivariate Analysis
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Introduction to Probability, Second Edition
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An Introduction to Generalized Linear Models, Second Edition
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The Analysis of Time Series
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Statistics for Technology
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Modelling Survival Data in Medical Research
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Bayesian Data Analysis, Second Edition
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Statistics for Epidemiology
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Problem Solving
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An Introduction to Generalized Linear Models, First Edition
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Epidemiology
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The BUGS Book
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Applied Stochastic Modelling
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Modern Data Science with R
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Statistical Inference
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Statistics in Research and Development
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Modelling Survival Data in Medical Research, Second Edition
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An Introduction to Generalized Linear Models
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Applied Non-Parametric Statistical Methods, Second Edition
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Surrogates
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Multivariate Analysis of Variance and Repeated Measures
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Elements of Simulation
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Computer-Aided Multivariate Analysis, Fourth Edition
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Applied Nonparametric Statistical Methods, Third Edition
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Statistics in Human Genetics and Molecular Biology
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Pragmatics of Uncertainty
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Markov Chain Monte Carlo
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Nonparametric Inference
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Foundations of Bayesian Statistics for Data Scientists
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Time Series
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Introduction to Modern Randomization-Based Design and Analysis for Causal Inference
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A Course in Regression and Smoothing Methods
| SKU | Unavailable |
| ISBN 13 | |
| ISBN 10 | |
| Title | Statistics in Engineering |
| Author | Andrew Metcalfe |
| Series | |
| Condition | Unavailable |
| Binding Type | |
| Publisher | |
| Year published | |
| Number of pages | |
| Cover note | Book picture is for illustrative purposes only, actual binding, cover or edition may vary. |
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