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Probability and Measure

By: Material type: TextTextLanguage: English Series: Wiley Series in Probability and Mathematical StatisticsPublication details: John Wiley New Delhi 1995Edition: 3rdDescription: xii, 593pISBN:
  • 9788126517718 (PB)
Subject(s):
Contents:
1. Probability 2. Measure 3. Integration 4. Random variables and expected values 5. Convergence of distributions 6. Derivatives and conditional probability 7. Stochastic processes
Summary: Now in its new third edition, Probability and Measure offers advanced students, scientists, and engineers an integrated introduction to measure theory and probability. Retaining the unique approach of the previous editions, this text interweaves material on probability and measure, so that probability problems generate an interest in measure theory and measure theory is then developed and applied to probability. Probability and Measure provides thorough coverage of probability, measure, integration, random variables and expected values, convergence of distributions, derivatives and conditional probability, and stochastic processes. The Third Edition features an improved treatment of Brownian motion and the replacement of queuing theory with ergodic theory.· Probability· Measure· Integration· Random Variables and Expected Values· Convergence of Distributions· Derivatives and Conditional Probability· Stochastic Processes
Item type: BOOKS List(s) this item appears in: New Arrivals (16 September 2024)
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IMSc Library 519.2 BIL (Browse shelf(Opens below)) Available 78236

1. Probability
2. Measure
3. Integration
4. Random variables and expected values
5. Convergence of distributions
6. Derivatives and conditional probability
7. Stochastic processes

Now in its new third edition, Probability and Measure offers advanced students, scientists, and engineers an integrated introduction to measure theory and probability. Retaining the unique approach of the previous editions, this text interweaves material on probability and measure, so that probability problems generate an interest in measure theory and measure theory is then developed and applied to probability. Probability and Measure provides thorough coverage of probability, measure, integration, random variables and expected values, convergence of distributions, derivatives and conditional probability, and stochastic processes. The Third Edition features an improved treatment of Brownian motion and the replacement of queuing theory with ergodic theory.· Probability· Measure· Integration· Random Variables and Expected Values· Convergence of Distributions· Derivatives and Conditional Probability· Stochastic Processes

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The Institute of Mathematical Sciences, Chennai, India