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Lazy Trading Part 4: Trade Control with Reinforcement Learn

Learn to build trading risk management software for your Trading Robots using Reinforcement Learning example!
4.1
4.1/5
(23 reviews)
386 students
Created by

8.6

Classbaze Grade®

8.4

Freshness

7.6

Popularity

9.3

Material

Learn to build trading risk management software for your Trading Robots using Reinforcement Learning example!
Platform: Udemy
Video: 3h 13m
Language: English
Next start: On Demand

Best Algorithmic Trading classes:

Classbaze Rating

Classbaze Grade®

8.6 / 10

CourseMarks Score® helps students to find the best classes. We aggregate 18 factors, including freshness, student feedback and content diversity.

Freshness

8.4 / 10
This course was last updated on 1/2021.

Course content can become outdated quite quickly. After analysing 71,530 courses, we found that the highest rated courses are updated every year. If a course has not been updated for more than 2 years, you should carefully evaluate the course before enrolling.

Popularity

7.6 / 10
We analyzed factors such as the rating (4.1/5) and the ratio between the number of reviews and the number of students, which is a great signal of student commitment.

New courses are hard to evaluate because there are no or just a few student ratings, but Student Feedback Score helps you find great courses even with fewer reviews.

Material

9.3 / 10
Video Score: 8.0 / 10
The course includes 3h 13m video content. Courses with more videos usually have a higher average rating. We have found that the sweet spot is 16 hours of video, which is long enough to teach a topic comprehensively, but not overwhelming. Courses over 16 hours of video gets the maximum score.
The average video length is 6 hours 18 minutes of 66 Algorithmic Trading courses on Udemy.
Detail Score: 10.0 / 10

The top online course contains a detailed description of the course, what you will learn and also a detailed description about the instructor.

Extra Content Score: 9.9 / 10

Tests, exercises, articles and other resources help students to better understand and deepen their understanding of the topic.

This course contains:

3 articles.
1 resources.
0 exercise.
0 test.

In this page

About the course

“This is about a Robot that can control Robots!”
About the Lazy Trading Courses:
This series of courses is designed to to combine fascinating experience of Algorithmic Trading and at the same time to learn Computer and Data Science! Particular focus is made on building Decision Support System that can help to automate a lot of boring processes related to Trading and also learn Data Science. Several algorithms will be built by performing basic data cycle ‘data input-data manipulation – analysis -output’. Provided examples throughout all 7 courses will show how to build very comprehensive system capable to automatically evolve without much manual input.
About this Course: Set up Automated Risk Management Software
The fourth part of this series will enable automatic risk management of multiple Algorithmic Trading Systems. Algorithm will be capable to identify best and worse Trading Systems. This will allow to automate decision to start or stop Trading Robots. Course is featuring several methods of achieving this goal, provides functions allowing to apply or adapt this method for any situation including outside of trading.
We will learn these Data and Computer Science concepts:
•Use R program to perform data analysis and generating output result
•Import data from files
•Clean and select data
•Writing and using functions in R
•’for’ loops
•Data manipulation using ‘pipe’ operator and ‘dplyr’ package in R
•Write data to files
•Calculate Profit Factor in R
•Using Reinforcement Learning in R
•Reinforcement Learning Example
•Creating Adaptive Reinforcement Learning system
•Automating and Scheduling any R code
“What is that ONE thing very special about this course?”
— Application of Reinforcement Learning algorithm that is learning from very first observation!
This project is containing several courses focused to help you managing Automated Trading Systems:
•Set up your Home Trading Environment
•Set up your Trading Strategy Robot
•Set up your automated Trading Journal
•Statistical Automated Trading Control
•Reading News and Sentiment Analysis
•Using Artificial Intelligence to detect market status
•Building an AI trading system
Dedicated R package ‘lazytrade’ is now published on CRAN to facilitate code sharing and improve code documentation
IMPORTANT: all courses are very practical focusing to one specific topic with only essential theoretical explanations. These courses will help to focus on developing strategies by automating boring but important processes for a trader.
What will you learn apart of trading:
While completing these courses you will learn much more rather than just trading by using provided examples:
•Learn and practice to use Decision Support System
•Be organized and systematic using Version Control and Automated Statistical Analysis
•Learn using R to read, manipulate data and perform Machine Learning including Deep Learning
•Learn and practice Data Visualization
•Learn sentiment analysis and web scrapping
•Learn Shiny to deploy any data project in hours
•Get productivity hacks
•Learn to automate R programs and scheduling them
•Get expandable examples of MQL4 and R code
What these courses are not:
•’Holy grail’ or Automatic Trading Black Box
•These courses will not teach and explain specific programming concepts in details
•These courses are not meant to teach basics of Data Science or Trading
•There is no guarantee on bug free programming
Disclaimer:
Trading is a risk. This course must not be intended as a financial advice or service. Past performance results are not guarantee for the future.

What can you learn from this course?

✓ Understand how to implement Reinforcement Learning in R for automated risk management
✓ Learn how to use statistical analysis of performed trades to control trading systems
✓ Setup Automated Decision Support Loop
✓ Automate R scripts
✓ Develop R code
✓ Use Version control for your R project
✓ Writing R functions
✓ Perform data manipulations

What you need to start the course?

• Knowledge on Forex Trading and it’s pitfalls
• You want to learn Data Science using Trading
• PC Windows (min 4CPU 8Gb RAM). This machine should be left ON continuously for several weeks
• R and R-Studio installed
• Best with 1, 2, 3 courses of Lazy Trading Series

Who is this course is made for?

• Anyone who want to be more productive
• Anyone who want to learn Data Science
• Anyone who want to try Algorithmic Trading but have little time
• Anyone interested in Self-Organizing systems
• Data Scientists looking to have Reinforcement Learning in the knowledge tool box

Are there coupons or discounts for Lazy Trading Part 4: Trade Control with Reinforcement Learn ? What is the current price?

The course costs $14.99. And currently there is a 82% discount on the original price of the course, which was $84.99. So you save $70 if you enroll the course now.
The average price is $23.0 of 66 Algorithmic Trading courses. So this course is 35% cheaper than the average Algorithmic Trading course on Udemy.

Will I be refunded if I'm not satisfied with the Lazy Trading Part 4: Trade Control with Reinforcement Learn course?

YES, Lazy Trading Part 4: Trade Control with Reinforcement Learn has a 30-day money back guarantee. The 30-day refund policy is designed to allow students to study without risk.

Are there any financial aid for this course?

Currently we could not find a scholarship for the Lazy Trading Part 4: Trade Control with Reinforcement Learn course, but there is a $70 discount from the original price ($84.99). So the current price is just $14.99.

Who will teach this course? Can I trust Vladimir Zhbanko?

Vladimir Zhbanko has created 12 courses that got 280 reviews which are generally positive. Vladimir Zhbanko has taught 10,397 students and received a 4.2 average review out of 280 reviews. Depending on the information available, we think that Vladimir Zhbanko is an instructor that you can trust.
Senior Engineering Specialist and Instructor
Hello, I am really excited that you read my little story here!
I am a Chemical Engineer by education, Problem Solver by nature and Instructor by hobby. I currently work in Swiss Multinational Company as Senior Engineering Specialist in R&D. I like to learn and apply modern technology to gain value. I believe that it is very important to always learn new technologies and apply them to reduce inefficiencies by finding complex patterns or applying new methods to close gaps.
In my public educational projects I would like to bring some ideas on how to apply computing power to be more productive. How to collect data in a smarter way using simple tools, how to analyze data to take a decision, and … why not to automate the decision using Artificial Intelligence? I will try to cover very practical side of technology, show how to benefit from it with concrete examples.
p.s. I will try my best to provide the best possible learning experience. If it would not be the case I would be very happy to receive any constructive feedback on how can I be better.
Browse all courses by on Classbaze.

8.6

Classbaze Grade®

8.4

Freshness

7.6

Popularity

9.3

Material

Platform: Udemy
Video: 3h 13m
Language: English
Next start: On Demand

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