Stochastic Models in Life Insurance

Stochastic Models in Life Insurance
Author: Michael Koller
Publisher: Springer Science & Business Media
Total Pages: 222
Release: 2012-03-23
Genre: Mathematics
ISBN: 3642284388


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The book provides a sound mathematical base for life insurance mathematics and applies the underlying concepts to concrete examples. Moreover the models presented make it possible to model life insurance policies by means of Markov chains. Two chapters covering ALM and abstract valuation concepts on the background of Solvency II complete this volume. Numerous examples and a parallel treatment of discrete and continuous approaches help the reader to implement the theory directly in practice.

Stochastic Modeling

Stochastic Modeling
Author:
Publisher:
Total Pages:
Release: 2010
Genre: Actuarial science
ISBN: 9780981396811


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Stochastic Control in Insurance

Stochastic Control in Insurance
Author: Hanspeter Schmidli
Publisher: Springer Science & Business Media
Total Pages: 263
Release: 2007-11-20
Genre: Business & Economics
ISBN: 1848000030


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Yet again, here is a Springer volume that offers readers something completely new. Until now, solved examples of the application of stochastic control to actuarial problems could only be found in journals. Not any more: this is the first book to systematically present these methods in one volume. The author starts with a short introduction to stochastic control techniques, then applies the principles to several problems. These examples show how verification theorems and existence theorems may be proved, and that the non-diffusion case is simpler than the diffusion case. Schmidli’s brilliant text also includes a number of appendices, a vital resource for those in both academic and professional settings.

Risk and Insurance

Risk and Insurance
Author: Søren Asmussen
Publisher: Springer Nature
Total Pages: 505
Release: 2020-04-17
Genre: Mathematics
ISBN: 3030351769


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This textbook provides a broad overview of the present state of insurance mathematics and some related topics in risk management, financial mathematics and probability. Both non-life and life aspects are covered. The emphasis is on probability and modeling rather than statistics and practical implementation. Aimed at the graduate level, pointing in part to current research topics, it can potentially replace other textbooks on basic non-life insurance mathematics and advanced risk management methods in non-life insurance. Based on chapters selected according to the particular topics in mind, the book may serve as a source for introductory courses to insurance mathematics for non-specialists, advanced courses for actuarial students, or courses on probabilistic aspects of risk. It will also be useful for practitioners and students/researchers in related areas such as finance and statistics who wish to get an overview of the general area of mathematical modeling and analysis in insurance.

Insurance Mathematics

Insurance Mathematics
Author: Riccardo Gatto
Publisher: Iste Press - Elsevier
Total Pages: 200
Release: 2018-05
Genre:
ISBN: 9781785480829


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Insurance Mathematics: Stochastic Models and Mathematical Methods gives a modern overview on the topic, emphasizing stochastic modeling and related mathematical methods. Topics covered include models for individual and aggregate losses in a portfolio of risks, models for compound losses, methods for determining premium rates, and credibility theory, which is based on Bayesian statistics. Experience rated premiums are also discussed using the Bühlmann Straub model and other general models. The last part of this important monograph introduces important computational techniques and how to distinguish the methods arising from asymptotic analysis, i.e., the Laplace and saddlepoint approximation. Presents methods for determining premium rates Includes asymptotic approximations Introduces particular models of life insurance and important computational techniques

Modelling in Life Insurance – A Management Perspective

Modelling in Life Insurance – A Management Perspective
Author: Jean-Paul Laurent
Publisher: Springer
Total Pages: 263
Release: 2016-05-02
Genre: Mathematics
ISBN: 3319297767


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Focusing on life insurance and pensions, this book addresses various aspects of modelling in modern insurance: insurance liabilities; asset-liability management; securitization, hedging, and investment strategies. With contributions from internationally renowned academics in actuarial science, finance, and management science and key people in major life insurance and reinsurance companies, there is expert coverage of a wide range of topics, for example: models in life insurance and their roles in decision making; an account of the contemporary history of insurance and life insurance mathematics; choice, calibration, and evaluation of models; documentation and quality checks of data; new insurance regulations and accounting rules; cash flow projection models; economic scenario generators; model uncertainty and model risk; model-based decision-making at line management level; models and behaviour of stakeholders. With author profiles ranging from highly specialized model builders to decision makers at chief executive level, this book should prove a useful resource to students and academics of actuarial science as well as practitioners.

Applied Stochastic Models and Control for Finance and Insurance

Applied Stochastic Models and Control for Finance and Insurance
Author: Charles S. Tapiero
Publisher: Springer Science & Business Media
Total Pages: 352
Release: 2012-12-06
Genre: Business & Economics
ISBN: 1461558239


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Applied Stochastic Models and Control for Finance and Insurance presents at an introductory level some essential stochastic models applied in economics, finance and insurance. Markov chains, random walks, stochastic differential equations and other stochastic processes are used throughout the book and systematically applied to economic and financial applications. In addition, a dynamic programming framework is used to deal with some basic optimization problems. The book begins by introducing problems of economics, finance and insurance which involve time, uncertainty and risk. A number of cases are treated in detail, spanning risk management, volatility, memory, the time structure of preferences, interest rates and yields, etc. The second and third chapters provide an introduction to stochastic models and their application. Stochastic differential equations and stochastic calculus are presented in an intuitive manner, and numerous applications and exercises are used to facilitate their understanding and their use in Chapter 3. A number of other processes which are increasingly used in finance and insurance are introduced in Chapter 4. In the fifth chapter, ARCH and GARCH models are presented and their application to modeling volatility is emphasized. An outline of decision-making procedures is presented in Chapter 6. Furthermore, we also introduce the essentials of stochastic dynamic programming and control, and provide first steps for the student who seeks to apply these techniques. Finally, in Chapter 7, numerical techniques and approximations to stochastic processes are examined. This book can be used in business, economics, financial engineering and decision sciences schools for second year Master's students, as well as in a number of courses widely given in departments of statistics, systems and decision sciences.

Some Stochastic Insurance Models on Number of Claims

Some Stochastic Insurance Models on Number of Claims
Author: Sidagam Naresh
Publisher: LAP Lambert Academic Publishing
Total Pages: 124
Release: 2014-07-04
Genre:
ISBN: 9783659391613


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This book was divided in to six chapters.The book is to highlight the present work in its right perspective. Some relevant literature on this type of modeling either in insurance or elsewhere are presented. In the period of dynamic indetermination in science, there is hardly a serious piece of research, which, if treated realistically, does not involve operations on stochastic process. So it is natural to find growing awareness and interest in stochastic modeling every where. An insurance system can be defined as a mechanism for reducing the adverse financial impact of random events that prevent the fulfillment of reasonable expectation of human beings. This system covers both property and human-life values. An insurance contract promises to make good to the insured a certain sum in consideration for a payment in the form of premium from the insured. Insurances can be classified in to two divisions namely life insurances and non life insurances. The non life insurances cover motor, health, fire, marine etc. A stochastic insurance model would be to setup a projection model which looks at a single policy, an entire portfolio or an entire company.

Stochastic Methods for Insurance

Stochastic Methods for Insurance
Author: Janssen
Publisher: Wiley-Blackwell
Total Pages:
Release: 2016-07-21
Genre:
ISBN: 9781848218994


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