超高频股票收益的订单流与自相关
文章 arXiv papers · 作者: Jian Zhou et al.
总结
本研究通过计算实验,使用改进的 Mike–Farmer 订单驱动模型,考察订单流如何影响超高频股票收益的自相关。研究用赫斯特指数衡量收益依赖性,并改变订单流的三项属性:订单方向的持续性、相对订单价格的持续性,以及相对订单价格的尾指数。
模型预测,订单方向持续性增强时收益自相关上升,而另外两项属性增强时收益自相关下降。不过,作者发现订单方向持续性的影响占主导地位,相对价格参数的影响很小。研究将这些预测与 43 只中国股票的订单流数据进行比较,报告称,数据支持模型对订单方向持续性和相对价格持续性所预测的关系。结果针对特定的现象学模型和所研究的股票样本;摘要无法说明这些预测对其他市场的适用程度,也未解释相对价格影响较弱的机制。
核心观点
- 改进的 Mike–Farmer 模型将订单流属性与超高频收益自相关联系起来。
- 研究使用赫斯特指数衡量收益依赖性。
- 模型中,持续的订单方向与收益自相关呈正向关系,且影响占主导地位。
- 模型中,相对订单价格的持续性及其尾指数呈负向关系,但影响很小。
- 来自 43 只中国股票的数据支持模型预测的部分关系。
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# Computational experiments successfully predict the emergence of autocorrelations in ultra-high-frequency stock returns # Computational experiments successfully predict the emergence of autocorrelations in ultra-high-frequency stock returns Social and economic systems are complex adaptive systems, in which heterogenous agents interact and evolve in a self-organized manner, and macroscopic laws emerge from microscopic properties. To understand the behaviors of complex systems, computational experiments based on physical and mathematical models provide a useful tools. Here, we perform computational experiments using a phenomenological order-driven model called the modified Mike-Farmer (MMF) to predict the impacts of order flows on the autocorrelations in ultra-high-frequency returns, quantified by Hurst index $H_r$. Three possible determinants embedded in the MMF model are investigated, including the Hurst index $H_s$ of order directions, the Hurst index $H_x$ and the power-law tail index $α_x$ of the relative prices of placed orders. The computational experiments predict that $H_r$ is negatively correlated with $α_x$ and $H_x$ and positively correlated with $H_s$. In addition, the values of $α_x$ and $H_x$ have negligible impacts on $H_r$, whereas $H_s$ exhibits a dominating impact on $H_r$. The predictions of the MMF model on the dependence of $H_r$ upon $H_s$ and $H_x$ are verified by the empirical results obtained from the order flow data of 43 Chinese stocks.
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