Neural Networks in Finance

Neural Networks in Finance
Author: Paul D. McNelis
Publsiher: Academic Press
Total Pages: 262
Release: 2005-01-05
Genre: Business & Economics
ISBN: 9780124859678

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This book explores the intuitive appeal of neural networks and the genetic algorithm in finance. It demonstrates how neural networks used in combination with evolutionary computation outperform classical econometric methods for accuracy in forecasting, classification and dimensionality reduction. McNelis utilizes a variety of examples, from forecasting automobile production and corporate bond spread, to inflation and deflation processes in Hong Kong and Japan, to credit card default in Germany to bank failures in Texas, to cap-floor volatilities in New York and Hong Kong. * Offers a balanced, critical review of the neural network methods and genetic algorithms used in finance * Includes numerous examples and applications * Numerical illustrations use MATLAB code and the book is accompanied by a website

Artificial Neural Networks in Finance and Manufacturing

Artificial Neural Networks in Finance and Manufacturing
Author: Kamruzzaman, Joarder,Begg, Rezaul,Sarker, Ruhul
Publsiher: IGI Global
Total Pages: 299
Release: 2006-03-31
Genre: Computers
ISBN: 9781591406723

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"This book presents a variety of practical applications of neural networks in two important domains of economic activity: finance and manufacturing"--Provided by publisher.

Neural Networks in Finance and Investing

Neural Networks in Finance and Investing
Author: Robert R. Trippi,Efraim Turban
Publsiher: Irwin Professional Publishing
Total Pages: 872
Release: 1996
Genre: Artificial intelligence
ISBN: UCSD:31822025890054

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This completely updated version of the classic first edition offers a wealth of new material reflecting the latest developments in teh field. For investment professionals seeking to maximize this exciting new technology, this handbook is the definitive information source.

Neural Networks in Finance and Investing

Neural Networks in Finance and Investing
Author: Robert R. Trippi,Efraim Turban
Publsiher: Irwin Professional Publishing
Total Pages: 872
Release: 1996
Genre: Business & Economics
ISBN: UVA:X004190022

Download Neural Networks in Finance and Investing Book in PDF, Epub and Kindle

This completely updated version of the classic first edition offers a wealth of new material reflecting the latest developments in teh field. For investment professionals seeking to maximize this exciting new technology, this handbook is the definitive information source.

Neural Networks in Finance

Neural Networks in Finance
Author: Paul D. McNelis
Publsiher: Elsevier
Total Pages: 261
Release: 2005-01-20
Genre: Computers
ISBN: 9780080479651

Download Neural Networks in Finance Book in PDF, Epub and Kindle

This book explores the intuitive appeal of neural networks and the genetic algorithm in finance. It demonstrates how neural networks used in combination with evolutionary computation outperform classical econometric methods for accuracy in forecasting, classification and dimensionality reduction. McNelis utilizes a variety of examples, from forecasting automobile production and corporate bond spread, to inflation and deflation processes in Hong Kong and Japan, to credit card default in Germany to bank failures in Texas, to cap-floor volatilities in New York and Hong Kong. * Offers a balanced, critical review of the neural network methods and genetic algorithms used in finance * Includes numerous examples and applications * Numerical illustrations use MATLAB code and the book is accompanied by a website

Machine Learning in Finance

Machine Learning in Finance
Author: Matthew F. Dixon,Igor Halperin,Paul Bilokon
Publsiher: Springer Nature
Total Pages: 565
Release: 2020-07-01
Genre: Business & Economics
ISBN: 9783030410681

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This book introduces machine learning methods in finance. It presents a unified treatment of machine learning and various statistical and computational disciplines in quantitative finance, such as financial econometrics and discrete time stochastic control, with an emphasis on how theory and hypothesis tests inform the choice of algorithm for financial data modeling and decision making. With the trend towards increasing computational resources and larger datasets, machine learning has grown into an important skillset for the finance industry. This book is written for advanced graduate students and academics in financial econometrics, mathematical finance and applied statistics, in addition to quants and data scientists in the field of quantitative finance. Machine Learning in Finance: From Theory to Practice is divided into three parts, each part covering theory and applications. The first presents supervised learning for cross-sectional data from both a Bayesian and frequentist perspective. The more advanced material places a firm emphasis on neural networks, including deep learning, as well as Gaussian processes, with examples in investment management and derivative modeling. The second part presents supervised learning for time series data, arguably the most common data type used in finance with examples in trading, stochastic volatility and fixed income modeling. Finally, the third part presents reinforcement learning and its applications in trading, investment and wealth management. Python code examples are provided to support the readers' understanding of the methodologies and applications. The book also includes more than 80 mathematical and programming exercises, with worked solutions available to instructors. As a bridge to research in this emergent field, the final chapter presents the frontiers of machine learning in finance from a researcher's perspective, highlighting how many well-known concepts in statistical physics are likely to emerge as important methodologies for machine learning in finance.

Financial Prediction Using Neural Networks

Financial Prediction Using Neural Networks
Author: Joseph S. Zirilli
Publsiher: Unknown
Total Pages: 168
Release: 1997
Genre: Business & Economics
ISBN: UOM:39015041905558

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Focusing on approaches to performing trend analysis through the use of neural nets, this book comparess the results of experiments on various types of markets, and includes a review of current work in the area. It appeals to students in both neural computing and finance as well as to financial analysts and academic and professional researchers in the field of neural network applications.

Neural Network Solutions for Trading in Financial Markets

Neural Network Solutions for Trading in Financial Markets
Author: Dirk Emma Baestaens,Willem Max van den Bergh,Douglas Wood
Publsiher: Pitman Publishing
Total Pages: 274
Release: 1994
Genre: Neural networks (Computer science)
ISBN: CORNELL:31924075313316

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Offers an alternative technique in forecasting to the traditional techniques used in trading and dealing. The book explains the shortcomings of traditional techniques and shows how neural networks overcome many of the disadvantages of these traditional systems.