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Automated Trading with R Chris Conlan

Automated Trading with R By Chris Conlan

Automated Trading with R by Chris Conlan


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Automated Trading with R Summary

Automated Trading with R: Quantitative Research and Platform Development by Chris Conlan

Learn to trade algorithmically with your existing brokerage, from data management, to strategy optimization, to order execution, using free and publicly available data. Connect to your brokerage's API, and the source code is plug-and-play.

Automated Trading with R explains automated trading, starting with its mathematics and moving to its computation and execution. You will gain a unique insight into the mechanics and computational considerations taken in building a back-tester, strategy optimizer, and fully functional trading platform.

The platform built in this book can serve as a complete replacement for commercially available platforms used by retail traders and small funds. Software components are strictly decoupled and easily scalable, providing opportunity to substitute any data source, trading algorithm, or brokerage. This book will:

  • Provide a flexible alternative to common strategy automation frameworks, like Tradestation, Metatrader, and CQG, to small funds and retail traders
  • Offer an understanding of the internal mechanisms of an automated trading system
  • Standardize discussion and notation of real-world strategy optimization problems

What You Will Learn

  • Understand machine-learning criteria for statistical validity in the context of time-series
  • Optimize strategies, generate real-time trading decisions, and minimize computation time while programming an automated strategy in R and using its package library
  • Best simulate strategy performance in its specific use case to derive accurate performance estimates
  • Understand critical real-world variables pertaining to portfolio management and performance assessment, including latency, drawdowns, varying trade size, portfolio growth, and penalization of unused capital

Who This Book Is For

Traders/practitioners at the retail or small fund level with at least an undergraduate background in finance or computer science; graduate level finance or data science students

About Chris Conlan

Chris Conlan began his career as an independent data scientist specializing in trading algorithms. He attended the University of Virginia where he completed his undergraduate statistics coursework in three semesters. During his time at UVA, he secured initial fundraising for a privately held high-frequency forex group as president and chief trading strategist. He is currently managing the development of private technology companies in high-frequency forex, machine vision, and dynamic reporting.

Table of Contents

Part 1: Problem Scope

Chapter 1: Fundamentals of Automated Trading

Chapter 2: Networking Part I: Fetching Data

Part 2: Building the Platform

Chapter 3: Data Preparation

Chapter 4: Indicators

Chapter 5: Rule Sets

Chapter 6: High-Performance Computing

Chapter 7: Simulation and Backtesting

Chapter 8: Optimization

Chapter 9: Networking Part II

Chapter 10: Organizing and Automating Scripts

Part 3: Production Trading

Chapter 11: Looking Forward

Chapter 12: Appendix A: Source Code

Chapter 13: Appendix B: Scoping in Multicore R

Additional information

NPB9781484221778
9781484221778
148422177X
Automated Trading with R: Quantitative Research and Platform Development by Chris Conlan
New
Paperback
APress
20160929
205
N/A
Book picture is for illustrative purposes only, actual binding, cover or edition may vary.
This is a new book - be the first to read this copy. With untouched pages and a perfect binding, your brand new copy is ready to be opened for the first time

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