Dr. Thomas Starke – Deep Reinforcement Learning in Trading
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Dr. Thomas Starke – Deep Reinforcement Learning in Trading
- List and explain the need for reinforcement learning to tackle the delayed gratification experiment
- Describe states, actions, double Q-learning, policy, experience replay and rewards.
- Explain exploitation vs exploration tradeoff
- Create and backtest a reinforcement learning model
- Analyse returns and risk using different performance measures
- Practice the concepts on real market data through a capstone project
- Explain the challenges faced in live trading and list the solutions for them
- Deploy the RL model for paper and live trading
SKILLS COVERED
Finance and Math Skills
- Sharpe ratio
- Returns & Maximum drawdowns
- Stochastic gradient descnet
- Mean squared error
Python
- Pandas, Numpy
- Matplotlib
- Datetime, TA-lib
- For loops
- Tensorflow, Keras, SGD
Reinforcement Learning
- Double Q-learning
- Artificial Neural Networks
- State, Rewards, Actions
- Experience Replay
- Exploration vs Exploitation
LEARNING TRACK
Machine Learning Strategy Development and Live Trading
INTERMEDIATE
- Data & Feature Engineering for Trading
- Portfolio Management using Machine Learning: Hierachical Risk Parity
ADVANCED
- Neural Networks in Trading
- Natural Language Processing in Trading
- Deep Reinforcement Learning in Trading
COURSE FEATURES
- Interactive Coding Practice
- Capstone Project Using Real Market Data
PREREQUISITES
This course requires a basic understanding of financial markets such as buying and selling of securities. To implement the strategies covered, the basic knowledge of “pandas dataframe”, “Keras” and “matplotlib” is required. The required skills are covered in the free course, ‘Python for Trading: Basic’, ‘Introduction to Machine Learning for Trading’ on Quantra. To gain an in-depth understanding of Neural Networks, you can enroll in the ‘Neural Networks in Trading’ course which is recommended but optional.
SYLLABUS
- Introduction
- Need for Reinforcement Learning
- State, Actions and Rewards
- Q Learning
- State Construction
- Policies in Reinforcement Learning
- Challenges in Reinforcement Learning
- Initialise Game Class
- Positions and Rewards
- Input Features
- Construct and Assemble State
- Game Class
- Experience Replay
- Artificial Neural Network Concepts
- Artificial Neural Network Implementation
- Backtesting Logic
- Backtesting Implementation
- Performance Analysis: Synthetic Date
- Performance Analysis: Real World Price Data
- Automated Trading Strategy
- Paper and Live Trading
- Capstone Project
- Future Enhancements
- Run Codes Locally on Your Machine
- Course Summary
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- Delving into the heart of the matter – quality. Acquiring the course directly from the sale page ensures that all documents and materials are identical to those obtained through conventional means. However, our differentiator lies in going beyond personal study; we take an extra step by reselling. It’s important to note that we are not the official course providers, meaning certain premium services aren’t included in our package:
- No coaching calls or scheduled sessions with the author.
- No access to the author’s private Facebook group or web portal.
- No entry to the author’s exclusive membership forum.
- No direct email support from the author or their team.
We operate independently, aiming to bridge the affordability gap without the additional services offered by official course channels. Your understanding of our unique approach is greatly appreciated.
- Delving into the heart of the matter – quality. Acquiring the course directly from the sale page ensures that all documents and materials are identical to those obtained through conventional means. However, our differentiator lies in going beyond personal study; we take an extra step by reselling. It’s important to note that we are not the official course providers, meaning certain premium services aren’t included in our package:
Refund is acceptable:
- Firstly, item is not as explained
- Secondly, Item do not work the way it should.
- Thirdly, and most importantly, support extension can not be used.
Thank you for choosing us! We’re so happy that you feel comfortable enough with us to forward your business here.
- Innovative Business Model:
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