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MLG 026 Project Bitcoin Trader

Machine Learning Guide

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Using Reinforcement Learning for Automated Trading

In our project, the actual code is written to use deep reinforcement learning by way of a framework called tenser force. I think reinforcement learning is a much better fit for automated trading than supervised learning but both can be used. A single price at a time step is usually not enough information to really build a pattern matching model. It is very unlikely that you could build an ls t m arnen that could really accurately predict next step prices just based on price alone. So how can we get more inputs out of our situation? More input for every time step? Well here's how.

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