Reinforcement Learning for Finance

A Python-Based Introduction

(Autor) Yves J Hilpisch
Formato: Paperback
55,99 Precio: £50,99 (9% off)
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Reinforcement learning (RL) has led to several breakthroughs in AI. The use of the Q-learning (DQL) algorithm alone has helped people develop agents that play arcade games and board games at a superhuman level. More recently, RL, DQL, and similar methods have gained popularity in publications related to financial research. This book is among the first to explore the use of reinforcement learning methods in finance. Author Yves Hilpisch, founder and CEO of The Python Quants, provides the background you need in concise fashion. ML practitioners, financial traders, portfolio managers, strategists, and analysts will focus on the implementation of these algorithms in the form of self-contained Python code and the application to important financial problems. This book covers: Reinforcement learning Deep Q-learning Python implementations of these algorithms How to apply the algorithms to financial problems such as algorithmic trading, dynamic hedging, and dynamic asset allocation This book is the ideal reference on this topic. You'll read it once, change the examples according to your needs or ideas, and refer to it whenever you work with RL for finance. Dr. Yves Hilpisch is founder and CEO of The Python Quants, a group that focuses on the use of open source technologies for financial data science, AI, asset management, algorithmic trading, and computational finance.

Information
Editorial:
O'Reilly Media
Formato:
Paperback
Número de páginas:
None
Idioma:
en
ISBN:
9781098169145
Año de publicación:
2024
Fecha publicación:
25 de Octubre de 2024

Yves J Hilpisch

Yves J. Hilpisch is a renowned author, speaker, and entrepreneur in the field of finance and technology. He is the founder and managing partner of The Python Quants, a company focusing on Python for financial data science, artificial intelligence, algorithmic trading, and computational finance. Hilpisch is also the author of several books on Python for finance and is a frequent speaker at conferences and events worldwide.

His most notable work is "Python for Finance," which has become a standard reference in the industry for using Python programming language for financial analysis and algorithmic trading. Hilpisch's writing style is clear, concise, and practical, making complex technical concepts accessible to a wide audience.

Hilpisch's contributions to the field of finance and technology have had a significant impact on the industry, helping professionals and academics alike leverage the power of Python for data analysis, modeling, and trading. His work has been instrumental in advancing the use of programming languages in finance and has inspired a new generation of professionals to embrace technology in their work.

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