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Statistical Decision Problems Selected Concepts And Portfolio Safeguard Case Studies 2013 Edition at Meripustak

Statistical Decision Problems Selected Concepts And Portfolio Safeguard Case Studies 2013 Edition by Michael Zabarankin Stan Uryasev , Springer

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  • General Information  
    Author(s)Michael Zabarankin Stan Uryasev
    PublisherSpringer
    ISBN9781461484707
    Pages249
    BindingHardback
    LanguageEnglish
    Publish YearDecember 2013

    Description

    Springer Statistical Decision Problems Selected Concepts And Portfolio Safeguard Case Studies 2013 Edition by Michael Zabarankin Stan Uryasev

    Statistical Decision Problems presents a quick and concise introduction into the theory of risk deviation and error measures that play a key role in statistical decision problems. It introduces state-of-the-art practical decision making through twenty-one case studies from real-life applications. The case studies cover a broad area of topics and the authors include links with source code and data a very helpful tool for the reader. In its core the text demonstrates how to use different factors to formulate statistical decision problems arising in various risk management applications such as optimal hedging portfolio optimization cash flow matching classification and more. The presentation is organized into three parts: selected concepts of statistical decision theory statistical decision problems and case studies with portfolio safeguard. The text is primarily aimed at practitioners in the areas of risk management decision making and statistics. However the inclusion of a fair bit of mathematical rigor renders this monograph an excellent introduction to the theory of general error deviation and risk measures for graduate students. It can be used as supplementary reading for graduate courses including statistical analysis data mining stochastic programming financial engineering to name a few. The high level of detail may serve useful to applied mathematicians engineers and statisticians interested in modeling and managing risk in various applications. Table of contents : 1. Random Variables.- 2. Deviation Risk and Error Measures.- 3. Probabilistic Inequalities.- 4. Maximum Likelihood Method.- 5. Entropy Maximization.- 6. Regression Models.- 7. Classification.- 8. Statistical Decision Models with Risk and Deviation.- 9. Portfolio Safeguard Case Studies.- Index.- References.



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