The Science of Algorithmic Trading and Portfolio Management: Applications Using Advanced Statistics, Optimization, and Machine Learning Techniques

The Science of Algorithmic Trading and Portfolio Management: Applications Using Advanced Statistics, Optimization, and Machine Learning Techniques book cover

The Science of Algorithmic Trading and Portfolio Management: Applications Using Advanced Statistics, Optimization, and Machine Learning Techniques

Author(s): Robert Kissell (Author)

  • Publisher: Academic Press
  • Publication Date: 14 Nov. 2013
  • Edition: Illustrated
  • Language: English
  • Print length: 256 pages
  • ISBN-10: 0124016898
  • ISBN-13: 9780124016897

Book Description

The Science of Algorithmic Trading and Portfolio Management, with its emphasis on algorithmic trading processes and current trading models, sits apart from others of its kind. Robert Kissell, the first author to discuss algorithmic trading across the various asset classes, provides key insights into ways to develop, test, and build trading algorithms. Readers learn how to evaluate market impact models and assess performance across algorithms, traders, and brokers, and acquire the knowledge to implement electronic trading systems. This valuable book summarizes market structure, the formation of prices, and how different participants interact with one another, including bluffing, speculating, and gambling. Readers learn the underlying details and mathematics of customized trading algorithms, as well as advanced modeling techniques to improve profitability through algorithmic trading and appropriate risk management techniques. Portfolio management topics, including quant factors and black box models, are discussed, and an accompanying website includes examples, data sets supplementing exercises in the book, and large projects. It prepares readers to evaluate market impact models and assess performance across algorithms, traders, and brokers. It helps readers design systems to manage algorithmic risk and dark pool uncertainty. It summarizes an algorithmic decision making framework to ensure consistency between investment objectives and trading objectives.

Editorial Reviews

Review

“This book provides excellent coverage of the challenges faced by portfolio managers and traders in implementing investment ideas and the advanced modeling techniques to address these challenges.” –Kumar Venkataraman, Southern Methodist University

Review

Offers students and professionals an introduction to algorithmic trading as well as advanced techniques on portfolio construction and the stock selection process

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