Supercharged Trading with Artificial Intelligence

Supercharged Trading with Artificial Intelligence

Author: Louis Mendelsohn

Publisher:

Published: 2018-09-19

Total Pages: 180

ISBN-13: 9781725871311

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This book explores the application of artificial intelligence - specifically deep machine learning neural networks - to intermarket analysis. It examines the role that intermarket analysis plays in assisting traders to identify trends and predict changes in trend directions and prices, in view of the unprecedented extent to which global financial markets have become interconnected and interdependent. This book will be of interest to both experienced traders and newcomers to the financial markets, who are inclined toward technical analysis and wish to benefit financially from the wealth creation opportunities in today's global financial markets.


Trend Forecasting with Intermarket Analysis

Trend Forecasting with Intermarket Analysis

Author: Louis B. Mendelsohn

Publisher: John Wiley & Sons

Published: 2012-10-15

Total Pages: 171

ISBN-13: 111853865X

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In this groundbreaking new edition, Mendelsohn gives you the weapon to conquer the limitations of traditional technical trading-intermarket analysis. To compete in today's rapidly changing economy, you need a method that can identify reoccurring patterns within individual financial markets and between related global markets. You need tools that lead, not lag. Step by step, Mendelsohn shows how combining technical, fundamental, and intermarket analysis into one powerful framework can give you an early edge to accurately forecasting trends. Inside, you'll discover: Precise trading strategies that can be used by both day traders and position traders. The limitations of traditional technical analysis methods-and how to overcome them. How neural network computational modeling can create leading, not lagging, moving averages for more accurate forecasting. Innovative, quantitative trend forecasting indicators at the cutting edge of market analysis. PLUS-an introduction to VantagePoint Software, which makes Mendelsohn's "new economy" trading methods work simply-and effectively. This software applies the pattern recognition capabilities of advanced neural networks to analyze intermarket data on literally hundreds of global financial markets each day.


Convergence: Artificial Intelligence and Quantum Computing

Convergence: Artificial Intelligence and Quantum Computing

Author: Greg Viggiano

Publisher: John Wiley & Sons

Published: 2022-11-03

Total Pages: 210

ISBN-13: 139417411X

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Prepare for the coming convergence of AI and quantum computing A collection of essays from 20 renowned, international authors working in industry, academia, and government, Convergence: Artificial Intelligence and Quantum Computing explains the impending convergence of artificial intelligence and quantum computing. A diversity of viewpoints is presented, each offering their view of this coming watershed event. In the book, you’ll discover that we’re on the cusp of seeing the stuff of science fiction become reality, with huge implications for ripping up the existing social fabric, global economy, and current geopolitical order. Along with an incisive foreword by Hugo- and Nebula-award winning author David Brin, you’ll also find: Explorations of the increasing pace of technological development Explanations of why seemingly unusual and surprising breakthroughs might be just around the corner Maps to navigate the potential minefields that await us as AI and quantum computing come together A fascinating and thought-provoking compilation of insights from some of the leading technological voices in the world, Convergence convincingly argues that we should prepare for a world in which very little will remain the same and shows us how to get ready.


Trend Forecasting with Technical Analysis

Trend Forecasting with Technical Analysis

Author: Louis B. Mendelsohn

Publisher: Traders Library

Published: 2000-06-01

Total Pages: 119

ISBN-13: 9781883272913

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Market methods from the last century won't work in this one and Louis Mendelsohn's breakthrough book takes technical analysis to a new level. Mendelsohn presents a comprehensive approach combining technical and intermarket analysis into one powerful framework for accurately forecasting trends. You'll discover: Precise trading strategies that work for day & position traders; the limitations of traditional technical analysis methods; and how to accurately forecast moving averages using intermarket analysis and neural networks. It's time for a fresh approach to technical analysis. Now, get the latest market timing and trend forecasting methods you need to profit consistently in the equity, options and futures markets.Market techniques that worked in the last century won't work in the current one. Now, Louis Mendelsohn's groundbreaking book takes technical analysis to the next level-giving today's traders all the tools needed to make more winning trades-more often.Mendelsohn presents a comprehensive approach-combining technical and intermarket analysis into one powerful framework for accurately forecasting trends.You'll also discover: -Precise trading strategies that can be used by both day traders and position traders-The limitations of traditional technical analysis methods-How to use moving averages as a leading-not lagging-indicator by the application of networks to intermarket analysis.PLUS-an introduction to VantagePoint Software and its amazing forecasting capabilities. This powerful software makes Mendelsohn's work simply-and effectively.


The Commitments of Traders Bible

The Commitments of Traders Bible

Author: Stephen Briese

Publisher: John Wiley & Sons

Published: 2008-04-04

Total Pages: 325

ISBN-13: 0470178426

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Regardless of your trading methods, and no matter what markets you’re involved in, there is a Commitments of Traders (COT) report that you should be reviewing every week. Nobody understands this better than Stephen Briese, an industry-leading expert on COT data. And now, with The Commitments of Traders Bible, Briese reveals how to use the predictive power of COT data—and accurately interpret it—in order to analyze market movements and achieve investment success.


Advances in Financial Machine Learning

Advances in Financial Machine Learning

Author: Marcos Lopez de Prado

Publisher: John Wiley & Sons

Published: 2018-01-23

Total Pages: 395

ISBN-13: 1119482119

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Learn to understand and implement the latest machine learning innovations to improve your investment performance Machine learning (ML) is changing virtually every aspect of our lives. Today, ML algorithms accomplish tasks that – until recently – only expert humans could perform. And finance is ripe for disruptive innovations that will transform how the following generations understand money and invest. In the book, readers will learn how to: Structure big data in a way that is amenable to ML algorithms Conduct research with ML algorithms on big data Use supercomputing methods and back test their discoveries while avoiding false positives Advances in Financial Machine Learning addresses real life problems faced by practitioners every day, and explains scientifically sound solutions using math, supported by code and examples. Readers become active users who can test the proposed solutions in their individual setting. Written by a recognized expert and portfolio manager, this book will equip investment professionals with the groundbreaking tools needed to succeed in modern finance.


AI Superpowers

AI Superpowers

Author: Kai-Fu Lee

Publisher: Harper Business

Published: 2018

Total Pages: 275

ISBN-13: 132854639X

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AI Superpowers is Kai-Fu Lee's New York Times and USA Today bestseller about the American-Chinese competition over the future of artificial intelligence.


Applied Data Science

Applied Data Science

Author: Martin Braschler

Publisher: Springer

Published: 2019-06-13

Total Pages: 464

ISBN-13: 3030118215

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This book has two main goals: to define data science through the work of data scientists and their results, namely data products, while simultaneously providing the reader with relevant lessons learned from applied data science projects at the intersection of academia and industry. As such, it is not a replacement for a classical textbook (i.e., it does not elaborate on fundamentals of methods and principles described elsewhere), but systematically highlights the connection between theory, on the one hand, and its application in specific use cases, on the other. With these goals in mind, the book is divided into three parts: Part I pays tribute to the interdisciplinary nature of data science and provides a common understanding of data science terminology for readers with different backgrounds. These six chapters are geared towards drawing a consistent picture of data science and were predominantly written by the editors themselves. Part II then broadens the spectrum by presenting views and insights from diverse authors – some from academia and some from industry, ranging from financial to health and from manufacturing to e-commerce. Each of these chapters describes a fundamental principle, method or tool in data science by analyzing specific use cases and drawing concrete conclusions from them. The case studies presented, and the methods and tools applied, represent the nuts and bolts of data science. Finally, Part III was again written from the perspective of the editors and summarizes the lessons learned that have been distilled from the case studies in Part II. The section can be viewed as a meta-study on data science across a broad range of domains, viewpoints and fields. Moreover, it provides answers to the question of what the mission-critical factors for success in different data science undertakings are. The book targets professionals as well as students of data science: first, practicing data scientists in industry and academia who want to broaden their scope and expand their knowledge by drawing on the authors’ combined experience. Second, decision makers in businesses who face the challenge of creating or implementing a data-driven strategy and who want to learn from success stories spanning a range of industries. Third, students of data science who want to understand both the theoretical and practical aspects of data science, vetted by real-world case studies at the intersection of academia and industry.


Machine Learning and Big Data with Kdb+/q

Machine Learning and Big Data with Kdb+/q

Author: Paul A. Bilokon

Publisher:

Published: 2019-11-11

Total Pages: 640

ISBN-13: 9781119404729

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Upgrade your programming language to more effectively handle high-frequency data Machine Learning and Big Data with KDB+/Q offers quants, programmers and algorithmic traders a practical entry into the powerful but non-intuitive kdb+ database and q programming language. Ideally designed to handle the speed and volume of high-frequency financial data at sell- and buy-side institutions, these tools have become the de facto standard; this book provides the foundational knowledge practitioners need to work effectively with this rapidly-evolving approach to analytical trading. The discussion follows the natural progression of working strategy development to allow hands-on learning in a familiar sphere, illustrating the contrast of efficiency and capability between the q language and other programming approaches. Rather than an all-encompassing "bible"-type reference, this book is designed with a focus on real-world practicality to help you quickly get up to speed and become productive with the language. Understand why kdb+/q is the ideal solution for high-frequency data Delve into "meat" of q programming to solve practical economic problems Perform everyday operations including basic regressions, cointegration, volatility estimation, modelling and more Learn advanced techniques from market impact and microstructure analyses to machine learning techniques including neural networks The kdb+ database and its underlying programming language q offer unprecedented speed and capability. As trading algorithms and financial models grow ever more complex against the markets they seek to predict, they encompass an ever-larger swath of data - more variables, more metrics, more responsiveness and altogether more "moving parts." Traditional programming languages are increasingly failing to accommodate the growing speed and volume of data, and lack the necessary flexibility that cutting-edge financial modelling demands. Machine Learning and Big Data with KDB+/Q opens up the technology and flattens the learning curve to help you quickly adopt a more effective set of tools.


Algorithmic Trading

Algorithmic Trading

Author: Ernie Chan

Publisher: John Wiley & Sons

Published: 2013-05-28

Total Pages: 230

ISBN-13: 1118460146

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Praise for Algorithmic TRADING “Algorithmic Trading is an insightful book on quantitative trading written by a seasoned practitioner. What sets this book apart from many others in the space is the emphasis on real examples as opposed to just theory. Concepts are not only described, they are brought to life with actual trading strategies, which give the reader insight into how and why each strategy was developed, how it was implemented, and even how it was coded. This book is a valuable resource for anyone looking to create their own systematic trading strategies and those involved in manager selection, where the knowledge contained in this book will lead to a more informed and nuanced conversation with managers.” —DAREN SMITH, CFA, CAIA, FSA, Managing Director, Manager Selection & Portfolio Construction, University of Toronto Asset Management “Using an excellent selection of mean reversion and momentum strategies, Ernie explains the rationale behind each one, shows how to test it, how to improve it, and discusses implementation issues. His book is a careful, detailed exposition of the scientific method applied to strategy development. For serious retail traders, I know of no other book that provides this range of examples and level of detail. His discussions of how regime changes affect strategies, and of risk management, are invaluable bonuses.” —ROGER HUNTER, Mathematician and Algorithmic Trader