Authors and Editors. Kishor S Trivedi at Duke University · Kishor S Trivedi. Duke University. Abstract. This is the second edition (that is revised. DOI: /RG Export this citation. Kishor S Trivedi at Duke University · Kishor S Trivedi. Duke University. Abstract. New paperback version of . Probability and Statistics with Reliability, Queuing and Computer Science Applications, Second Edition, offers a comprehensive introduction to probabiliby, .
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An accessible introduction to probability, stochastic processes, and statistics for computer science and engineering applications. Second edition now also available in Paperback. This updated and revised edition of the popular classic first edition relates fundamental concepts in pribability and statistics to the computer sciences and engineering.
The author uses Markov chains and other statistical tools to illustrate processes in reliability of computer systems and networks, fault tolerance, and performance. This edition features an entirely new section on stochastic Petri nets—as well as new sections on system availability modeling, wireless system probabiljty, numerical solution techniques for Markov chains, and software reliability modeling, among other subjects.
Extensive revisions take new developments in solution techniques and applications into account and bring this work totally up to date.
It includes more than worked examples and self-study exercises for each section. Probability and Statistics with Reliability, Queuing and Computer Science ApplicationsSecond Edition offers a comprehensive introduction to probability, stochastic processes, and statistics for students of computer science, electrical and computer engineering, and applied mathematics.
Its wealth of practical examples and up-to-date information makes it an excellent resource for practitioners as well. An Instructor’s Manual presenting detailed solutions to all the problems in the book is available from the Wiley editorial department. Probability, Markov Chains, Queues, and Simulation. Performance Modeling and Design of Computer Systems. Linear Programming and Network Flows.
Kernel Methods for Pattern Analysis. Simulation and the Monte Carlo Pprobability. Mathematical Foundations of Computer Networking. Statistical Analysis Techniques in Particle Physics. Guide to Intelligent Data Analysis. An Introduction to Machine Learning. Modeling and Dimensioning of Mobile Wireless Networks. Modeling and Reasoning with Bayesian Networks. Bayesian Essentials with R. Neural Networks and Statistical Learning. Core Concepts in Data Analysis: Summarization, Correlation and Visualization.
Uncertainty and Optimization in Structural Mechanics. Introduction to Deep Learning Using R.
Handbook of Monte Carlo Methods. Optimization in Engineering Sciences. Cluster Analysis and Data Mining. Machine Learning with R. The Design of Approximation Algorithms. Partially Observed Markov Decision Processes. Statistical Models in S. Bayesian Filtering and Smoothing.
Algorithms for Sparsity-Constrained Optimization. Data Mining and Analysis. Automated Technology for Verification and Analysis. Optimization of Temporal Networks under Uncertainty.
Algorithms and Programs of Dynamic Mixture Estimation. Quantitative Evaluation of Systems.
Applied and Computational Control, Signals, and Circuits. Computer-Hardware Evaluation of Mathematical Functions. Network Reliability and Resilience. Elements of Statistical Computing.
The Mathematics Of Generalization. Formal Modeling and Analysis of Timed Systems. statisstics
Design of Modern Communication Networks. Fault Detection and Diagnosis in Engineering Systems. Kernel Methods and Machine Learning. A Practical Guide to Averaging Functions. Handbook of Approximation Algorithms and Metaheuristics.
Classification, Parameter Estimation and State Estimation. Time-Series Prediction and Applications. Uncertain Rule-Based Fuzzy Systems. Utility Maximization in Nonconvex Wireless Systems. Delayed and Network Queues. Quantitative Methods in Supply Chain Management. Analytical and Stochastic Modelling Techniques reliabillty Applications. Advances in K-means Clustering. Verification, Model Checking, and Abstract Interpretation.
Operations Research and Cyber-Infrastructure.
Fundamentals of Queueing Theory. Reliability and Availability Engineering. How to write a great review. The review must be at least 50 characters long. The title should be at least 4 characters long.
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