Trading Evolved

Trading Evolved
Title Trading Evolved PDF eBook
Author Andreas F. Clenow
Publisher
Pages 442
Release 2019-08-07
Genre
ISBN 9781091983786

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Systematic trading allows you to test and evaluate your trading ideas before risking your money. By formulating trading ideas as concrete rules, you can evaluate past performance and draw conclusions about the viability of your trading plan. Following systematic rules provides a consistent approach where you will have some degree of predictability of returns, and perhaps more importantly, it takes emotions and second guessing out of the equation. From the onset, getting started with professional grade development and backtesting of systematic strategies can seem daunting. Many resort to simplified software which will limit your potential. Trading Evolved will guide you all the way, from getting started with the industry standard Python language, to setting up a professional backtesting environment of your own. The book will explain multiple trading strategies in detail, with full source code, to get you well on the path to becoming a professional systematic trader. This is a highly practical book, where every aspect is explained, all source code shown and no holds barred. Written by Andreas F. Clenow, author of the international best sellers Following the Trend and Stocks on the Move, Trading Evolved goes into greater depth and covers strategies for trading both futures and equities. "Trading Evolved is an incredible resource for aspiring quants. Clenow does an excellent job making complex subjects easy to access and understand. Bravo." -- Wes Gray, PhD, CEO Alpha Architect

Following the Trend

Following the Trend
Title Following the Trend PDF eBook
Author Andreas F. Clenow
Publisher John Wiley & Sons
Pages 309
Release 2012-11-21
Genre Business & Economics
ISBN 111841084X

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During bull and bear markets, there is a group of hedge funds and professional traders which have been consistently outperforming traditional investment strategies for the past 30 odd years. They have shown remarkable uncorrelated performance and in the great bear market of 2008 they had record gains. These traders are highly secretive about their proprietary trading algorithms and often employ top PhDs in their research teams. Yet, it is possible to replicate their trading performance with relatively simplistic models. These traders are trend following cross asset futures managers, also known as CTAs. Many books are written about them but none explain their strategies in such detail as to enable the reader to emulate their success and create their own trend following trading business, until now. Following the Trend explains why most hopefuls fail by focusing on the wrong things, such as buy and sell rules, and teaches the truly important parts of trend following. Trading everything from the Nasdaq index and T-bills to currency crosses, platinum and live hogs, there are large gains to be made regardless of the state of the economy or stock markets. By analysing year by year trend following performance and attribution the reader will be able to build a deep understanding of what it is like to trade futures in large scale and where the real problems and opportunities lay. Written by experienced hedge fund manager Andreas Clenow, this book provides a comprehensive insight into the strategies behind the booming trend following futures industry from the perspective of a market participant. The strategies behind the success of this industry are explained in great detail, including complete trading rules and instructions for how to replicate the performance of successful hedge funds. You are in for a potentially highly profitable roller coaster ride with this hard and honest look at the positive as well as the negative sides of trend following.

Python for Algorithmic Trading

Python for Algorithmic Trading
Title Python for Algorithmic Trading PDF eBook
Author Yves Hilpisch
Publisher O'Reilly Media
Pages 380
Release 2020-11-12
Genre Computers
ISBN 1492053325

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Algorithmic trading, once the exclusive domain of institutional players, is now open to small organizations and individual traders using online platforms. The tool of choice for many traders today is Python and its ecosystem of powerful packages. In this practical book, author Yves Hilpisch shows students, academics, and practitioners how to use Python in the fascinating field of algorithmic trading. You'll learn several ways to apply Python to different aspects of algorithmic trading, such as backtesting trading strategies and interacting with online trading platforms. Some of the biggest buy- and sell-side institutions make heavy use of Python. By exploring options for systematically building and deploying automated algorithmic trading strategies, this book will help you level the playing field. Set up a proper Python environment for algorithmic trading Learn how to retrieve financial data from public and proprietary data sources Explore vectorization for financial analytics with NumPy and pandas Master vectorized backtesting of different algorithmic trading strategies Generate market predictions by using machine learning and deep learning Tackle real-time processing of streaming data with socket programming tools Implement automated algorithmic trading strategies with the OANDA and FXCM trading platforms

Handbook of High Frequency Trading

Handbook of High Frequency Trading
Title Handbook of High Frequency Trading PDF eBook
Author Greg N. Gregoriou
Publisher Academic Press
Pages 495
Release 2015-02-05
Genre Business & Economics
ISBN 0128023627

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This comprehensive examination of high frequency trading looks beyond mathematical models, which are the subject of most HFT books, to the mechanics of the marketplace. In 25 chapters, researchers probe the intricate nature of high frequency market dynamics, market structure, back-office processes, and regulation. They look deeply into computing infrastructure, describing data sources, formats, and required processing rates as well as software architecture and current technologies. They also create contexts, explaining the historical rise of automated trading systems, corresponding technological advances in hardware and software, and the evolution of the trading landscape. Developed for students and professionals who want more than discussions on the econometrics of the modelling process, The Handbook of High Frequency Trading explains the entirety of this controversial trading strategy. - Answers all questions about high frequency trading without being limited to mathematical modelling - Illuminates market dynamics, processes, and regulations - Explains how high frequency trading evolved and predicts its future developments

Emissions Trading

Emissions Trading
Title Emissions Trading PDF eBook
Author Richard F. Kosobud
Publisher John Wiley & Sons
Pages 354
Release 2000-01-28
Genre Political Science
ISBN 9780471355045

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Der Emissionsrechtehandel ist eine rechtliche Vereinbarung, die es Emissionsquellen (chemischen - und Fertigungsbetrieben) erlaubt, Emissionsrechte bestimmter Schad- und Giftstoffe zu kaufen oder zu verkaufen. Der Ausstoß dieser Stoffe, insbesondere von Stickoxiden, flüchtigen organischen Verbindungen, Schwefeldioxiden und Kohlenmonoxiden, wird von der EPA, der amerikanischen Umweltschutzbehörde, geregelt. Dieses Buch definiert und erläutert unternehmensbezogene Fragen im Bereich des Emissionsrechtehandels und bietet Anleitungen für die effektive Nutzung dieses kontrovers diskutierten Themas. "Emissions Trading" wurde von Spitzenforschern auf diesem Gebiet geschrieben. Sie haben u.a. eine gemeinsame Sprache und Terminologie für die Diskussion des Emissionsrechtehandels erarbeitet haben und bieten Tipps an für die Umsetzung in die Praxis. Ein Buch aus der NAM (National Association of Manufacturers)-Reihe; mit einem Vorwort von NAM-President Jerry Jasinowski.

Machine Learning for Algorithmic Trading

Machine Learning for Algorithmic Trading
Title Machine Learning for Algorithmic Trading PDF eBook
Author Stefan Jansen
Publisher Packt Publishing Ltd
Pages 822
Release 2020-07-31
Genre Business & Economics
ISBN 1839216786

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Leverage machine learning to design and back-test automated trading strategies for real-world markets using pandas, TA-Lib, scikit-learn, LightGBM, SpaCy, Gensim, TensorFlow 2, Zipline, backtrader, Alphalens, and pyfolio. Purchase of the print or Kindle book includes a free eBook in the PDF format. Key FeaturesDesign, train, and evaluate machine learning algorithms that underpin automated trading strategiesCreate a research and strategy development process to apply predictive modeling to trading decisionsLeverage NLP and deep learning to extract tradeable signals from market and alternative dataBook Description The explosive growth of digital data has boosted the demand for expertise in trading strategies that use machine learning (ML). This revised and expanded second edition enables you to build and evaluate sophisticated supervised, unsupervised, and reinforcement learning models. This book introduces end-to-end machine learning for the trading workflow, from the idea and feature engineering to model optimization, strategy design, and backtesting. It illustrates this by using examples ranging from linear models and tree-based ensembles to deep-learning techniques from cutting edge research. This edition shows how to work with market, fundamental, and alternative data, such as tick data, minute and daily bars, SEC filings, earnings call transcripts, financial news, or satellite images to generate tradeable signals. It illustrates how to engineer financial features or alpha factors that enable an ML model to predict returns from price data for US and international stocks and ETFs. It also shows how to assess the signal content of new features using Alphalens and SHAP values and includes a new appendix with over one hundred alpha factor examples. By the end, you will be proficient in translating ML model predictions into a trading strategy that operates at daily or intraday horizons, and in evaluating its performance. What you will learnLeverage market, fundamental, and alternative text and image dataResearch and evaluate alpha factors using statistics, Alphalens, and SHAP valuesImplement machine learning techniques to solve investment and trading problemsBacktest and evaluate trading strategies based on machine learning using Zipline and BacktraderOptimize portfolio risk and performance analysis using pandas, NumPy, and pyfolioCreate a pairs trading strategy based on cointegration for US equities and ETFsTrain a gradient boosting model to predict intraday returns using AlgoSeek's high-quality trades and quotes dataWho this book is for If you are a data analyst, data scientist, Python developer, investment analyst, or portfolio manager interested in getting hands-on machine learning knowledge for trading, this book is for you. This book is for you if you want to learn how to extract value from a diverse set of data sources using machine learning to design your own systematic trading strategies. Some understanding of Python and machine learning techniques is required.

Contrarian Ripple Trading

Contrarian Ripple Trading
Title Contrarian Ripple Trading PDF eBook
Author Aidan J. McNamara
Publisher John Wiley & Sons
Pages 210
Release 2007-09-10
Genre Business & Economics
ISBN 0470198923

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Contrarian Ripple Trading "Contrarian Ripple Trading is a well-written and well-documented observation for stock traders. I especially enjoyed hearing the commonsense behind McNamara and Bro?zyna's method. For those individuals looking to cut through the huge amount of poor information out there, I think you will thoroughly appreciate this book. I found the high percentage of winning trades hard to argue with." --Jason Alan Jankovsky, FOREX trader and author of Trading Rules That Work Making money in today's stock market can be a difficult endeavor, especially if you're not an expert in the worlds of finance or business. Authors Aidan McNamara and Martha Broz?yna--a married couple who work outside the investment world, but who happen to be active traders--can relate to this situation. That's why they've created Contrarian Ripple Trading. Written in a straightforward and accessible style, this reliable resource outlines the approach they've successfully used to capture profits from the stock market for many years. With this book as your guide, you'll quickly discover how you too can effectively implement a low-risk trading technique that consistently generates short-term profits on trades in large capitalization stocks--regardless of whether the market is moving up, down, or sideways. Throughout the book, and in accompanying Appendixes, McNamara and Broz?yna refer to examples of their flawless trading record--1,225 profitable, round-trip trades over a twenty-six month period--to illustrate how contrarian ripple trading can produce a regular stream of profits in many different market conditions. By combining aspects of investing--notably the need for safety and decent returns--with characteristics of short-term speculation, Contrarian Ripple Trading arms you with a technique that can be used to generate a reliable extra income stream through low-risk, short-term stock trading.