cs.AI updates on arXiv.org 09月15日
Meta-RL-Crypto:基于元学习和强化学习的加密货币交易代理
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本文提出Meta-RL-Crypto,一种结合元学习和强化学习的加密货币交易代理,通过无需额外人工监督的封闭循环架构,实现自我改进,并在不同市场环境中展现出良好的性能。

arXiv:2509.09751v1 Announce Type: cross Abstract: Predicting cryptocurrency returns is notoriously difficult: price movements are driven by a fast-shifting blend of on-chain activity, news flow, and social sentiment, while labeled training data are scarce and expensive. In this paper, we present Meta-RL-Crypto, a unified transformer-based architecture that unifies meta-learning and reinforcement learning (RL) to create a fully self-improving trading agent. Starting from a vanilla instruction-tuned LLM, the agent iteratively alternates between three roles-actor, judge, and meta-judge-in a closed-loop architecture. This learning process requires no additional human supervision. It can leverage multimodal market inputs and internal preference feedback. The agent in the system continuously refines both the trading policy and evaluation criteria. Experiments across diverse market regimes demonstrate that Meta-RL-Crypto shows good performance on the technical indicators of the real market and outperforming other LLM-based baselines.

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元学习 强化学习 加密货币交易 市场分析 自我改进
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