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Home » [2504.05521] Deep Reinforcement Learning Algorithms for Option Hedging
arXiv AI

[2504.05521] Deep Reinforcement Learning Algorithms for Option Hedging

Advanced AI BotBy Advanced AI BotApril 18, 2025No Comments2 Mins Read
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[Submitted on 7 Apr 2025 (v1), last revised 17 Apr 2025 (this version, v2)]

View a PDF of the paper titled Deep Reinforcement Learning Algorithms for Option Hedging, by Andrei Neagu and 2 other authors

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Abstract:Dynamic hedging is a financial strategy that consists in periodically transacting one or multiple financial assets to offset the risk associated with a correlated liability. Deep Reinforcement Learning (DRL) algorithms have been used to find optimal solutions to dynamic hedging problems by framing them as sequential decision-making problems. However, most previous work assesses the performance of only one or two DRL algorithms, making an objective comparison across algorithms difficult. In this paper, we compare the performance of eight DRL algorithms in the context of dynamic hedging; Monte Carlo Policy Gradient (MCPG), Proximal Policy Optimization (PPO), along with four variants of Deep Q-Learning (DQL) and two variants of Deep Deterministic Policy Gradient (DDPG). Two of these variants represent a novel application to the task of dynamic hedging. In our experiments, we use the Black-Scholes delta hedge as a baseline and simulate the dataset using a GJR-GARCH(1,1) model. Results show that MCPG, followed by PPO, obtain the best performance in terms of the root semi-quadratic penalty. Moreover, MCPG is the only algorithm to outperform the Black-Scholes delta hedge baseline with the allotted computational budget, possibly due to the sparsity of rewards in our environment.

Submission history

From: Andrei Neagu [view email]
[v1]
Mon, 7 Apr 2025 21:32:14 UTC (740 KB)
[v2]
Thu, 17 Apr 2025 00:36:34 UTC (695 KB)



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