- Introduction
- Concepts
- Data Acquisition
- Technical Analysis Indicators
- Biased Data Labelling
- Rule Induction with RIPPER
- Backtesting our Model
- Reading and Trading our Rules
What you'll learn
- How to apply Rule Induction Algorithms in Python
- How to perform intermarket analysis
- How to download historical data from Python
- How to validate Machine Learning Models
Description
In this course you are going to learn how to take your trading to the next level applying different techniques to analyze the market and create powerful trading signals.
This course is mainly divided into two concepts.
Intermarket Analysis: Since Cryptocurrencies don’t have much historical data, we need to gain insights by being creative.
In order to analyze one security, we are going to use data from that security and many others.
Let’s say we are analyzing Bitcoin, in that case we will use Bitcoin data, and also Ethereum and even stock indexes.
Once we have mastered that concept, it’s time to roll up our sleeves and start coding.
Using Python you are going to learn how to download historical data and create indicators to gain insights from that data.
Then you are going to learn how to create biased labels to optimize what our algorithm needs to learn.
Finally, once we have everything prepared, we are going to use RIPPER (Repeated Incremental Pruning to Produce Error Reduction) as our rule induction algorithm in order to create readable rules that will result in powerful trading systems.
At the end of this course, you will have your own trading system generator.
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About the instructors
- 4.13 Calificación
- 13022 Estudiantes
- 7 Cursos
Genbox Trading
Advanced Algorithmic Trading
Traders often try thousands of failed strategies, they get desperate seeing how no matter what they do the market ignores them and takes away their capital.
We teach you to overcome these problems and finally find your profitable algorithmic edge.
In our masterclasses you are going to learn how to use cutting edge technology to regain your edge in the market.