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Trading Confidence: Comprehensive Uncertainty Estimation in Algorithmic Trading

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Reinforcement Learning (RL) has emerged as a powerful approach in financial trading, enabling agents to learn optimal strategies through direct market interaction. However, financial markets are highly uncertain, with price fluctuations driven by stochastic volatility, model limitations, and regime shifts. Traditional RL models struggle in dynamic environments, often failing to adapt to sudden market disruptions, leading to suboptimal trading decisions. To address this challenge, we propose an uncertainty-aware RL framework that integrates distributional, epistemic, and aleatoric uncertainty estimations. Our approach enhances uncertainty estimation using SHAP-weighted reconstruction uncertainty, MC Dropout, and an LSTM-based technical indicator consensus mechanism. Experimental results on five major U.S. stock indices demonstrate that RL agents equipped with uncertainty estimation significantly outperform traditional models in return and risk management. This study advances uncertainty estimation in RL-based financial trading, with future research extending its application to other asset classes and alternative RL architectures for greater adaptability.

Lin Li, Li Rong Wang, Hsuan Fu, Xiuyi Fan• 2026

Related benchmarks

TaskDatasetResultRank
Algorithmic TradingS&P 500 (P1)
Sharpe Ratio1.59
10
Algorithmic TradingDow Jones (P4)
Sharpe Ratio2.18
10
Algorithmic TradingNasdaq (P2)
Sharpe Ratio0.83
10
Algorithmic TradingRussel 2000 (P2)
Sharpe Ratio1.77
10
Algorithmic TradingWilshire 5000 (P4)
Sharpe Ratio1.73
10
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