Machine Learning For Financial Engineering

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This volume investigates algorithmic methods based on machine learning in order to design sequential investment strategies for financial markets. Such sequential investment strategies use information collected from the market's past and determine, at the beginning of a trading period, a portfolio; that is, a way to invest the currently available capital among the assets that are available for purchase or investment.

The aim is to produce a self-contained text intended for a wide audience, including researchers and graduate students in computer science, finance, statistics, mathematics, and engineering.

Author(s): László Györfi, György Ottucsák, Harro Walk (eds.)
Series: Advances in Computer Science and Engineering: Texts, Vol. 08
Publisher: Imperial College Press
Year: 2012

Language: English
Pages: 261
Tags: Информатика и вычислительная техника;Искусственный интеллект;