Deep Reinforcement Learning Framework to Automate Trading in Quantitative Finance

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Deep Reinforcement Learning Framework to Automate Trading in Quantitative Finance
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FinRL is an open-source framework for quantitative traders, simplifying DRL strategy development with customizable, reproducible, and beginner-friendly tools.

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Authors: Xiao-Yang Liu, Hongyang Yang, Columbia University ; Jiechao Gao, University of Virginia ; Christina Dan Wang , New York University Shanghai . Table of Links Abstract and 1 Introduction 2 Related Works and 2.1 Deep Reinforcement Learning Algorithms 2.2 Deep Reinforcement Learning Libraries and 2.3 Deep Reinforcement Learning in Finance 3 The Proposed FinRL Framework and 3.1 Overview of FinRL Framework 3.2 Application Layer 3.3 Agent Layer 3.4 Environment Layer 3.

1 Deep Reinforcement Learning Algorithms 2.2 Deep Reinforcement Learning Libraries and 2.3 Deep Reinforcement Learning in Finance 2.2 Deep Reinforcement Learning Libraries and 2.3 Deep Reinforcement Learning in Finance 3 The Proposed FinRL Framework and 3.1 Overview of FinRL Framework 3 The Proposed FinRL Framework and 3.1 Overview of FinRL Framework 3.2 Application Layer 3.2 Application Layer 3.3 Agent Layer 3.3 Agent Layer 3.4 Environment Layer 3.4 Environment Layer 3.

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