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Data science for algorithmic trading

LeeAndro

Trusted Editor
Trusted Editor
Data science for algorithmic trading
Created by Data World | Last updated 5/2020
Duration: 3h 8m | 9 sections | 62 lectures | Video: 1280x720, 44 KHz | 888 MB
Genre: eLearning | Language: English + Sub

We will create a algorithmic trading strategy that earns 50% annually.


Use numpy to do scientific calculation

Use pandas to import and organize data

Use Matplotlib to visualize data

Use, create, understand mathematical model

Machine learning for algorithmic trading

Features Eeering

Statistics for finance

Create an easy-to-reuse backtesting universe

Automatically take sales and buy positions

Data import with a API

title>Data science for algorithmic trading | Udemy

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It's with pride that I offer this data science course for algorithmic trading. It is the fruit of several years of work in the field in order to truly understand all the subtleties of the world of quantitative finance.

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Using libraries will allow you to do complex mathematical calculations applied to finance in just a few lines of code. We will see how to create a algorithm of trading from data import to automatic positions. You will create an algorithm that will yield more than 50% annually on the Nasdaq 100 using an algorithm.

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In summary, we will study:

The numpy library to do scientific calculations

The pandas library to organize and visualize data

The Matplotlib library to make powerful graphics

Features eeering

Linear regression for finance

Machine vector support

Decision tree

Random Forest

Apply and understand the Sharpe ratio

Apply and understand the Sortino ratio

Understanding the volatility of a stock market asset

Understand and create a backtesting universe that is easy to reuse

Backtest the strategy

Who this course is for:Everyone



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