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Environmental Statistics and Data Analysis

Autor Wayne R. Ott
en Limba Engleză Hardback – 20 dec 1994
This easy-to-understand introduction emphasizes the areas of probability theory and statistics that are important in environmental monitoring, data analysis, research, environmental field surveys, and environmental decision making. It communicates basic statistical theory with very little abstract mathematical notation, but without omitting important details and assumptions.

Topics include Bayes' Theorem, geometric distribution, computer simulation, histograms and frequency plots, maximum likelihood estimation, the tail exponential method, Bernoulli processes, Poisson processes, diffusion and dispersion of pollutants, normal distribution, confidence intervals, and stochastic dilution; gamma, chi-square, and Weibull distributions; and the two- and three-parameter lognormal distributions. The author also presents the Statistical Theory of Rollback, which allows data analysts and regulatory officials to estimate the effect of different emission control strategies on environmental quality frequency distributions.

Assuming only a basic knowledge of algebra and calculus, Environmental Statistics and Data Analysis provides an outstanding reference and collection of statistical procedures for analyzing environmental data and making accurate environmental predictions.
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Specificații

ISBN-13: 9780873718486
ISBN-10: 0873718488
Pagini: 328
Dimensiuni: 178 x 254 x 24 mm
Greutate: 0.78 kg
Ediția:1
Editura: CRC Press
Colecția CRC Press

Public țintă

Undergraduate

Recenzii

"... provides a lucid explanation of how environmental processes can yield observations realized from various probability models, and hence gives better justification for their choice than empirical fit."
-Journal of the American Statistical Association

Cuprins

Random Processes, Stochastic Processes in the Environment, Structure of the Book, Theory of Probability, Probability Concepts, Probability Laws, Conditional Probability and Bayes' Theorem, Summary, Problems, Probability Models, Discrete Probability Models, Continuous Random Variables, Moments, Expected Value, and Central Tendency, Variance, Kurtosis, and Skewness, Analysis of Observed Data, Summary, Problems, Bernoulli Processes, Conditions for Bernoulli Process, Development of Model, Binomial Distribution, Applications to Environmental Problems, Computation of B(n,p), Problems, Poisson Processes, Conditions for Poisson Process, Development of Model, Poisson Distribution, Examples, Applications to Environmental Problems, Computation of P(l,t) , Problems, Diffusion and Dispersion of Pollutants, Wedge Machine, Particle Frame Machine, Plume Model, Summary and Conclusions, Problems, Normal Processes, Conditions for Normal Process, Development of Model, Confidence Intervals, Applications to Environmental Problems, Computation of N(m,s) , Problems, Dilution of Pollutants, Deterministic Dilution, Stochastic Dilution, Applications to Environmental Problems, Summary and Conclusions, Problems, Lognormal Processes, Conditions for Lognormal Process, Development of Model, Lognormal Probability Model, Estimating Parameters of the Lognormal Distribution, Three-Parameter Lognormal Model, Statistical Theory of Rollback, Applications to Environmental Problems, Summary and Conclusions, Problems, Index

Descriere

This easy-to-understand introduction emphasizes the areas of probability theory and statistics important in environmental monitoring, data analysis, research, environmental field surveys, and environmental decision making. It communicates basic statistical theory and includes Bayes' Theorem, geometric distribution, computer simulation, histograms and frequency plots, maximum likelihood estimation, the tail exponential method, Bernoulli processes, Poisson processes, diffusion and dispersion of pollutants, normal distribution, confidence intervals, and stochastic dilution; gamma, chi-square, and Weibull distributions; and the two- and three-parameter lognormal distributions.

Catalog Copy II