arXiv · 2303.02613
On Data-Driven Drawdown Control with Restart Mechanism in Trading
Abstract
This paper extends the existing drawdown modulation control policy to include a novel restart mechanism for trading. It is known that the drawdown modulation policy guarantees the maximum percentage drawdown no larger than a prespecified drawdown limit for all time with probability one. However, when the prespecified limit is approaching in practice, such a modulation policy becomes a stop-loss order, which may miss the profitable follow-up opportunities if any. Motivated by this, we add a data-driven restart mechanism into the drawdown modulation trading system to auto-tune the performance. We find that with the restart mechanism, our policy may achieve a superior trading performance to that without the restart, even with a nonzero transaction costs setting. To support our findings, some empirical studies using equity ETF and cryptocurrency with historical price data are provided.
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Chung-Han Hsieh. 2023-03-05. On Data-Driven Drawdown Control with Restart Mechanism in Trading. https://doi.org/10.1016/j.ifacol.2023.10.219
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