羊群行为与延迟信息如何导致A股动量与反转
文章 arXiv papers · 作者: Jiahao Weng
总结
本研究使用基于智能体的模型,考察局部模仿和缓慢的信息流如何共同导致中国A股市场的动量及后续反转。投资者对未来价格持有不同看法,会选择买入、卖出或暂不行动,并根据周边交易者调整行为。模型测试了多种格点和随机网络结构,并以单独的信息扩散过程表示信息随时间传达给投资者的方式。
模拟结果显示,较强的羊群行为与交易聚集、较大的价格波动和更厚的收益尾部相关。信息扩散加快时,价格会更快趋近信号所指示的价值;信息扩散与社会强化相互作用,则可能导致价格过度偏离后反转。与A股数据的实证比较发现,采用约翰逊变换的滚动尾部羊群指标,其变化与CSAD和LSV指标相似,并在重大冲击期间上升。本文展示的是模型模拟和指标比较,并非交易策略或实盘盈利证据;结论取决于模型假设和实证指标的构造方式。
核心观点
- 局部模仿可能使交易聚集并放大价格波动。
- 信息扩散延迟可能减缓价格调整。
- 信息流与社会强化结合可能导致价格过度偏离后反转。
- 研究将滚动尾部羊群指标与A股市场的CSAD和LSV指标进行比较。
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全文
# Herding, Momentum, and Reversal in China's A-Share Market: An Agent-Based Network Model with Information Diffusion # Herding, Momentum, and Reversal in China's A-Share Market: An Agent-Based Network Model with Information Diffusion This study develops an agent-based financial market model to explain stock-price momentum and reversal through the joint effects of local herding and delayed information diffusion. Investors form heterogeneous Gaussian beliefs about the next-period price, choose among buying, selling, and remaining inactive, and revise their action probabilities in response to neighboring investors. The local interaction structure is represented by von Neumann and Moore lattices and is later replaced by Erdős--Rényi and Watts--Strogatz networks for robustness. A separate information process updates investor beliefs through a finite-speed diffusion mechanism, allowing informational adjustment to be distinguished from behavioral imitation. The simulations show that stronger herding produces spatially clustered trading, larger price fluctuations, and more pronounced excess kurtosis in returns. Faster information diffusion reduces the time required for prices to approach the signal-implied value, whereas the combination of information diffusion and social reinforcement generates overshooting and subsequent reversal. An empirical application to China's A-share market compares conventional CSAD and LSV measures with a rolling tail-based herding indicator obtained after Johnson $S_U$ transformation. The indicators display similar time variation and rise during major market disruptions. These findings identify information delay, local social reinforcement, and the eventual decay of herding as complementary mechanisms behind momentum and reversal.
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