Uncertainty Quantification using R Uncertainty Quantification using R
    • ‏139٫99 US$

وصف الناشر

This book is a rigorous but practical presentation of the techniques of uncertainty quantification, with applications in R and Python. This volume includes mathematical arguments at the level necessary to make the presentation rigorous and the assumptions clearly established, while maintaining a focus on practical applications of uncertainty quantification methods. Practical aspects of applied probability are also discussed, making the content accessible to students. The introduction of R and Python allows the reader to solve more complex problems involving a more significant number of variables. Users will be able to use examples laid out in the text to solve medium-sized problems.   

The list of topics covered in this volume includes linear and nonlinear programming, Lagrange multipliers (for sensitivity), multi-objective optimization, game theory, as well as linear algebraic equations, and probability and statistics. Blending theoretical rigor and practical applications, this volume will be of interest to professionals, researchers, graduate and undergraduate students interested in the use of uncertainty quantification techniques within the framework of operations research and mathematical programming, for applications in management and planning.  

النوع
تمويل شركات وأفراد
تاريخ النشر
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٢٢ فبراير
اللغة
EN
الإنجليزية
عدد الصفحات
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الناشر
Springer International Publishing
البائع
Springer Nature B.V.
الحجم
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‫م.ب.‬
Mathematical Statistics Mathematical Statistics
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Introduction to the Theory of Optimization in Euclidean Space Introduction to the Theory of Optimization in Euclidean Space
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Advanced Optimization and Operations Research Advanced Optimization and Operations Research
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Sustainability and Resources Sustainability and Resources
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Insurance Risk and Ruin: Second Edition Insurance Risk and Ruin: Second Edition
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Introduction to Quantitative Macroeconomics Using Julia Introduction to Quantitative Macroeconomics Using Julia
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Uncertainty Quantification with R Uncertainty Quantification with R
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Uncertainty Quantification and Stochastic Modelling with EXCEL Uncertainty Quantification and Stochastic Modelling with EXCEL
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Variational Methods for Engineers with Matlab Variational Methods for Engineers with Matlab
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Modeling and Convexity Modeling and Convexity
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Novel Financial Applications of Machine Learning and Deep Learning Novel Financial Applications of Machine Learning and Deep Learning
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Multicriteria Location Analysis Multicriteria Location Analysis
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Data Mining and Analytics in Healthcare Management Data Mining and Analytics in Healthcare Management
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Judgment in Predictive Analytics Judgment in Predictive Analytics
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Applied Linear Regression for Business Analytics with R Applied Linear Regression for Business Analytics with R
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Retail Space Analytics Retail Space Analytics
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