Risk Measures With Applications In Finance And Economics
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Author |
: Michael McAleer |
Publisher |
: MDPI |
Total Pages |
: 536 |
Release |
: 2019-07-23 |
ISBN-10 |
: 9783038974437 |
ISBN-13 |
: 3038974439 |
Rating |
: 4/5 (37 Downloads) |
Synopsis Risk Measures with Applications in Finance and Economics by : Michael McAleer
Risk measures play a vital role in many subfields of economics and finance. It has been proposed that risk measures could be analysed in relation to the performance of variables extracted from empirical real-world data. For example, risk measures may help inform effective monetary and fiscal policies and, therefore, the further development of pricing models for financial assets such as equities, bonds, currencies, and derivative securities.A Special Issue of “Risk Measures with Applications in Finance and Economics” will be devoted to advancements in the mathematical and statistical development of risk measures with applications in finance and economics. This Special Issue will bring together the theory, practice and real-world applications of risk measures. This book is a collection of papers published in the Special Issue of “Risk Measures with Applications in Finance and Economics” for Sustainability in 2018.
Author |
: Songsak Sriboonchita |
Publisher |
: CRC Press |
Total Pages |
: 456 |
Release |
: 2009-10-19 |
ISBN-10 |
: 9781420082678 |
ISBN-13 |
: 1420082671 |
Rating |
: 4/5 (78 Downloads) |
Synopsis Stochastic Dominance and Applications to Finance, Risk and Economics by : Songsak Sriboonchita
Drawing from many sources in the literature, Stochastic Dominance and Applications to Finance, Risk and Economics illustrates how stochastic dominance (SD) can be used as a method for risk assessment in decision making. It provides basic background on SD for various areas of applications. Useful Concepts and Techniques for Economics ApplicationsThe
Author |
: Škrinjari?, Tihana |
Publisher |
: IGI Global |
Total Pages |
: 432 |
Release |
: 2020-09-25 |
ISBN-10 |
: 9781799850847 |
ISBN-13 |
: 1799850846 |
Rating |
: 4/5 (47 Downloads) |
Synopsis Recent Applications of Financial Risk Modelling and Portfolio Management by : Škrinjari?, Tihana
In today’s financial market, portfolio and risk management are facing an array of challenges. This is due to increasing levels of knowledge and data that are being made available that have caused a multitude of different investment models to be explored and implemented. Professionals and researchers in this field are in need of up-to-date research that analyzes these contemporary models of practice and keeps pace with the advancements being made within financial risk modelling and portfolio control. Recent Applications of Financial Risk Modelling and Portfolio Management is a pivotal reference source that provides vital research on the use of modern data analysis as well as quantitative methods for developing successful portfolio and risk management techniques. While highlighting topics such as credit scoring, investment strategies, and budgeting, this publication explores diverse models for achieving investment goals as well as improving upon traditional financial modelling methods. This book is ideally designed for researchers, financial analysts, executives, practitioners, policymakers, academicians, and students seeking current research on contemporary risk management strategies in the financial sector.
Author |
: Marina Resta |
Publisher |
: MDPI |
Total Pages |
: 234 |
Release |
: 2020-04-02 |
ISBN-10 |
: 9783039284986 |
ISBN-13 |
: 3039284983 |
Rating |
: 4/5 (86 Downloads) |
Synopsis Computational Methods for Risk Management in Economics and Finance by : Marina Resta
At present, computational methods have received considerable attention in economics and finance as an alternative to conventional analytical and numerical paradigms. This Special Issue brings together both theoretical and application-oriented contributions, with a focus on the use of computational techniques in finance and economics. Examined topics span on issues at the center of the literature debate, with an eye not only on technical and theoretical aspects but also very practical cases.
Author |
: Jon Danielsson |
Publisher |
: John Wiley & Sons |
Total Pages |
: 307 |
Release |
: 2011-04-20 |
ISBN-10 |
: 9781119977117 |
ISBN-13 |
: 1119977118 |
Rating |
: 4/5 (17 Downloads) |
Synopsis Financial Risk Forecasting by : Jon Danielsson
Financial Risk Forecasting is a complete introduction to practical quantitative risk management, with a focus on market risk. Derived from the authors teaching notes and years spent training practitioners in risk management techniques, it brings together the three key disciplines of finance, statistics and modeling (programming), to provide a thorough grounding in risk management techniques. Written by renowned risk expert Jon Danielsson, the book begins with an introduction to financial markets and market prices, volatility clusters, fat tails and nonlinear dependence. It then goes on to present volatility forecasting with both univatiate and multivatiate methods, discussing the various methods used by industry, with a special focus on the GARCH family of models. The evaluation of the quality of forecasts is discussed in detail. Next, the main concepts in risk and models to forecast risk are discussed, especially volatility, value-at-risk and expected shortfall. The focus is both on risk in basic assets such as stocks and foreign exchange, but also calculations of risk in bonds and options, with analytical methods such as delta-normal VaR and duration-normal VaR and Monte Carlo simulation. The book then moves on to the evaluation of risk models with methods like backtesting, followed by a discussion on stress testing. The book concludes by focussing on the forecasting of risk in very large and uncommon events with extreme value theory and considering the underlying assumptions behind almost every risk model in practical use – that risk is exogenous – and what happens when those assumptions are violated. Every method presented brings together theoretical discussion and derivation of key equations and a discussion of issues in practical implementation. Each method is implemented in both MATLAB and R, two of the most commonly used mathematical programming languages for risk forecasting with which the reader can implement the models illustrated in the book. The book includes four appendices. The first introduces basic concepts in statistics and financial time series referred to throughout the book. The second and third introduce R and MATLAB, providing a discussion of the basic implementation of the software packages. And the final looks at the concept of maximum likelihood, especially issues in implementation and testing. The book is accompanied by a website - www.financialriskforecasting.com – which features downloadable code as used in the book.
Author |
: Georg Bol |
Publisher |
: Springer Science & Business Media |
Total Pages |
: 286 |
Release |
: 2008-11-14 |
ISBN-10 |
: 9783790820508 |
ISBN-13 |
: 3790820504 |
Rating |
: 4/5 (08 Downloads) |
Synopsis Risk Assessment by : Georg Bol
New developments in assessing and managing risk are discussed in this volume. Addressing both practitioners in the banking sector and research institutions, the book provides a manifold view on the most-discussed topics in finance. Among the subjects treated are important issues such as: risk measures and allocation of risks, factor modeling, risk premia in the hedge funds industry and credit risk management. The volume provides an overview of recent developments as well as future trends in the area of risk assessment.
Author |
: Svetlozar T. Rachev |
Publisher |
: John Wiley & Sons |
Total Pages |
: 264 |
Release |
: 2011-03-10 |
ISBN-10 |
: 9781444392708 |
ISBN-13 |
: 1444392700 |
Rating |
: 4/5 (08 Downloads) |
Synopsis A Probability Metrics Approach to Financial Risk Measures by : Svetlozar T. Rachev
A Probability Metrics Approach to Financial Risk Measures relates the field of probability metrics and risk measures to one another and applies them to finance for the first time. Helps to answer the question: which risk measure is best for a given problem? Finds new relations between existing classes of risk measures Describes applications in finance and extends them where possible Presents the theory of probability metrics in a more accessible form which would be appropriate for non-specialists in the field Applications include optimal portfolio choice, risk theory, and numerical methods in finance Topics requiring more mathematical rigor and detail are included in technical appendices to chapters
Author |
: Paolo Brandimarte |
Publisher |
: John Wiley & Sons |
Total Pages |
: 620 |
Release |
: 2014-06-20 |
ISBN-10 |
: 9781118594513 |
ISBN-13 |
: 1118594517 |
Rating |
: 4/5 (13 Downloads) |
Synopsis Handbook in Monte Carlo Simulation by : Paolo Brandimarte
An accessible treatment of Monte Carlo methods, techniques, and applications in the field of finance and economics Providing readers with an in-depth and comprehensive guide, the Handbook in Monte Carlo Simulation: Applications in Financial Engineering, Risk Management, and Economics presents a timely account of the applicationsof Monte Carlo methods in financial engineering and economics. Written by an international leading expert in thefield, the handbook illustrates the challenges confronting present-day financial practitioners and provides various applicationsof Monte Carlo techniques to answer these issues. The book is organized into five parts: introduction andmotivation; input analysis, modeling, and estimation; random variate and sample path generation; output analysisand variance reduction; and applications ranging from option pricing and risk management to optimization. The Handbook in Monte Carlo Simulation features: An introductory section for basic material on stochastic modeling and estimation aimed at readers who may need a summary or review of the essentials Carefully crafted examples in order to spot potential pitfalls and drawbacks of each approach An accessible treatment of advanced topics such as low-discrepancy sequences, stochastic optimization, dynamic programming, risk measures, and Markov chain Monte Carlo methods Numerous pieces of R code used to illustrate fundamental ideas in concrete terms and encourage experimentation The Handbook in Monte Carlo Simulation: Applications in Financial Engineering, Risk Management, and Economics is a complete reference for practitioners in the fields of finance, business, applied statistics, econometrics, and engineering, as well as a supplement for MBA and graduate-level courses on Monte Carlo methods and simulation.
Author |
: El Bachir Boukherouaa |
Publisher |
: International Monetary Fund |
Total Pages |
: 35 |
Release |
: 2021-10-22 |
ISBN-10 |
: 9781589063952 |
ISBN-13 |
: 1589063953 |
Rating |
: 4/5 (52 Downloads) |
Synopsis Powering the Digital Economy: Opportunities and Risks of Artificial Intelligence in Finance by : El Bachir Boukherouaa
This paper discusses the impact of the rapid adoption of artificial intelligence (AI) and machine learning (ML) in the financial sector. It highlights the benefits these technologies bring in terms of financial deepening and efficiency, while raising concerns about its potential in widening the digital divide between advanced and developing economies. The paper advances the discussion on the impact of this technology by distilling and categorizing the unique risks that it could pose to the integrity and stability of the financial system, policy challenges, and potential regulatory approaches. The evolving nature of this technology and its application in finance means that the full extent of its strengths and weaknesses is yet to be fully understood. Given the risk of unexpected pitfalls, countries will need to strengthen prudential oversight.
Author |
: Michael McAleer |
Publisher |
: |
Total Pages |
: 536 |
Release |
: 2019 |
ISBN-10 |
: 3038974447 |
ISBN-13 |
: 9783038974444 |
Rating |
: 4/5 (47 Downloads) |
Synopsis Risk Measures with Applications in Finance and Economics by : Michael McAleer
Risk measures play a vital role in many subfields of economics and finance. It has been proposed that risk measures could be analysed in relation to the performance of variables extracted from empirical real-world data. For example, risk measures may help inform effective monetary and fiscal policies and, therefore, the further development of pricing models for financial assets such as equities, bonds, currencies, and derivative securities.false,A Special Issue of “Risk Measures with Applications in Finance and Economics” will be devoted to advancements in the mathematical and statistical development of risk measures with applications in finance and economics. This Special Issue will bring together the theory, practice and real-world applications of risk measures. This book is a collection of papers published in the Special Issue of “Risk Measures with Applications in Finance and Economics” for Sustainability in 2018.