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Showing posts with label Finance. Show all posts
Showing posts with label Finance. Show all posts

Computational Intelligence in Economics and Finance Volume II:

>> Sunday, August 9, 2009

 Computational Intelligence in Economics and Finance Volume II

Computational Intelligence in Economics and Finance Volume II

Product Description

Computational intelligence (CI), as an alternative to statistical and econometric approaches, has been applied to a wide range of economics and finance problems in recent years, for example to price forecasting and market efficiency.

This book contains research ranging from applications in financial markets and business administration to various economics problems. Not only are empirical studies utilizing various CI algorithms presented, but so also are theoretical models based on computational methods. In addition to direct applications of computational intelligence, readers can also observe how these methods are combined with conventional analytical methods such as statistical and econometric models to yield preferred results.

Chen, Wang, and Kuo have grouped the 12 contributions following their introductory chapter into applications of fuzzy logic, neural networks (including self-organizing maps and support vector machines), and evolutionary computation. All chapters were selected either by invitation or based on a careful selection and extension of best papers from the International Workshop on Computational Intelligence in Economics and Finance in 2005. Overall, the book offers researchers an excellent overview of current advances and applications of computational intelligence techniques to economics and finance problems.

to download follow the link below:

http://rapidshare.com/files/264950999/Computation_Intelligen_Eonomic.rar

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Applications of Artificial Intelligence in Finance and Economics:

 Applications of Artificial Intelligence in Finance and Economics

Applications of Artificial Intelligence in Finance and Economics

Product Description
Artificial intelligence is a consortium of data-driven methodologies which includes artificial neural networks, genetic algorithms, fuzzy logic, probabilistic belief networks and machine learning as its components. We have witnessed a phenomenal impact of this data-driven consortium of methodologies in many areas of studies, the economic and financial fields being of no exception. In particular, this volume of collected works will give examples of its impact on the field of economics and finance. This volume is the result of the selection of high-quality papers presented at a special session entitled ‘Applications of Artificial Intelligence in Economics and Finance’ at the ‘2003 International Conference on Artificial Intelligence’ (IC-AI ‘03) held at the Monte Carlo Resort, Las Vegas, Nevada, USA, June 23-26 2003. The special session, organised by Jane Binner, Graham Kendall and Shu-Heng Chen, was presented in order to draw attention to the tremendous diversity and richness of the applications of artificial intelligence to problems in Economics and Finance. This volume should appeal to economists interested in adopting an interdisciplinary approach to the study of economic problems, computer scientists who are looking for potential applications of artificial intelligence and practitioners who are looking for new perspectives on how to build models for everyday operations.

There are still many important Artificial Intelligence disciplines yet to be covered. Among them are the methodologies of independent component analysis, reinforcement learning, inductive logical programming, classifier systems and Bayesian networks, not to mention many ongoing and highly fascinating hybrid systems. A way to make up for their omission is to visit this subject again later. We certainly hope that we can do so in the near future with another volume of ‘Applications of Artificial Intelligence in Economics and Finance’.

to download follow the link below:

http://rapidshare.com/files/264950996/Applications_of_Artificial_Intelligence_in_Finance.zip

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Perception-based Data Mining and Decision Making in Economics and Finance:

 Perception-based Data Mining and Decision Making in Economics and Finance

Perception-based Data Mining and Decision Makingin Economics and Finance

Product Description
The primary goal of this book is to present to the scientific and management communities a selection of applications using recent Soft Computing (SC) and Computing with Words and Perceptions (CWP) models and techniques meant to solve some economics and financial problems that are of utmost importance. The book starts with a coverage of data mining tools and techniques that may be of use and significance for economic and financial analyses and applications.Notably, fuzzy and natural language based approaches and solutions for a more human consistent dealing with decision support, time series analysis, forecasting, clustering, etc. are discussed. The second part deals with various decision making models, particularly under probabilistic and fuzzy uncertainty, and their applications in solving a wide array of problems including portfolio optimization, option pricing, financial engineering, risk analysis etc. The selected examples could also serve as a starting point or as an opening out, in the SC and CWP techniques application to a wider range of problems in economics and finance.

to download follow the link below:

http://rapidshare.com/files/264951000/Data_Mining_and_Decision_Making.rar

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Modeling Derivatives in C++ (Wiley Finance):

>> Sunday, July 19, 2009

Modeling Derivatives in C++ (Wiley Finance)

Modeling Derivatives in C++ (Wiley Finance)

Product Description
This book is the definitive and most comprehensive guide to modeling derivatives in C++ today. Providing readers with not only the theory and math behind the models, as well as the fundamental concepts of financial engineering, but also actual robust object-oriented C++ code, this is a practical introduction to the most important derivative models used in practice today, including equity (standard and exotics including barrier, lookback, and Asian) and fixed income (bonds, caps, swaptions, swaps, credit) derivatives.The book provides complete C++ implementations for many of the most important derivatives and interest rate pricing models used onWall Street including Hull-White, BDT, CIR, HJM, and LIBOR Market Model. London illustrates the practical and efficient implementations of these models in real-world situations and discusses the mathematical underpinnings and derivation of the models in a detailed yet accessible manner illustrated by many examples with numerical data as well as real market data. A companion CD contains quantitative libraries, tools, applications, and resources that will be of value to those doing quantitative programming and analysis in C++. Filled with practical advice and helpful tools, Modeling Derivatives in C++ will help readers succeed in understanding and implementing C++ when modeling all types of derivatives.

to download follow the link below:

http://rapidshare.com/files/256664860/Modeling_Derivatives_in_C__.rar

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