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Python for Algorithmic Trading Cookbook

Python for Algorithmic Trading Cookbook - Second Edition

By : Jason Strimpel
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Python for Algorithmic Trading Cookbook

Python for Algorithmic Trading Cookbook

By: Jason Strimpel

Overview of this book

Get practical Python code for algorithmic trading from Jason Strimpel, founder of PyQuant News and a veteran of global trading, risk management, and machine learning. This hands-on guide shows you how to turn market data into tested, automated trading strategies using modern Python tools. You’ll source equities, options, and futures data with OpenBB and FMP, then accelerate Python for data analysis workflows with Pandas, Polars, Parquet, DuckDB, and ArcticDB. You’ll visualize market data with Matplotlib, Seaborn, and Plotly Dash before moving into alpha research and quantitative trading techniques. Detailed recipes help you engineer alpha factors with PCA, regression, Fama-French models, SciPy, and statsmodels. You’ll design and evaluate quantitative trading strategies using VectorBT, Zipline Reloaded, Alphalens Reloaded, and PyFolio, including walk-forward analysis and risk-aware performance review. For execution, you’ll connect to the Interactive Brokers API to stream ticks, manage orders, retrieve portfolio state, and monitor live trading workflows. By the end, you’ll have reusable Python templates for researching, backtesting, evaluating, and operating algorithmic trading strategies.
Table of Contents (19 chapters)
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17
Other Books You May Enjoy
18
Index

13

Manage Orders, Positions, and Portfolios with the IB API

In algorithmic trading, efficient management of orders, positions, and portfolio data is critical. Luckily for us, we can do it all using Python. Managing orders encompasses a range of activities, including executing new trades, canceling existing orders, and updating orders to adapt to changing market conditions or shifts in trading strategies. Managing positions involves monitoring and analyzing live position data to track profit and loss (PnL) in real time. This immediate insight into the performance of individual trades enables traders to make informed decisions on whether to hold, sell, or adjust positions. Further, real-time (or near real-time) portfolio data can generate real-time (or near real-time) risk statistics to improve overall risk management. Portfolio data management involves a comprehensive analysis of the portfolio to assess its performance, understand risk exposure, and make strategic adjustments for optimizing...

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Python for Algorithmic Trading Cookbook
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