用混沌指数解析股市波动的三种状态及驱动因素
Modeling Regime Structure and Informational Drivers of Stock Market Volatility via the Financial Chaos Index
- 基于张量与特征值构建金融混沌指数,捕捉资产价格联动波动
- 1990至2023年数据识别出低、中、高混沌三种市场状态
- 宏观、政策、地缘等不确定性可有效预测不同状态下波动率
本文通过金融混沌指数(FCIX)研究股市波动的结构动态,该指数基于张量与特征值,通过资产价格间的相互波动捕捉实际波动。受金融危机中波动行为具有阶段性及感知时间延宕的实证启发,我们采用修正对数正态幂律分布构建分段制式框架。分析1990年1月至2023年12月的FCIX数据,识别出低混沌、中混沌和高混沌三种市场状态,其特征分别为系统性压力水平、统计离散度和持续性差异。在此基础上,进一步探究影响前瞻性市场预期的信息力量。利用来自股权市场波动追踪器的情绪预测变量,通过弹性网络回归模型预测隐含波动率(以VIX指数为代理),发现宏观经济、金融、政策与地缘政治不确定性在各状态下均具备强预测能力。结果共同揭示了系统性不确定性如何同时驱动金融市场实际演化与隐含波动率中的预期行为。
原文摘要 · Abstract (English)
This paper investigates the structural dynamics of stock market volatility through the Financial Chaos Index, a tensor- and eigenvalue-based measure designed to capture realized volatility via mutual fluctuations among asset prices. Motivated by empirical evidence of regime-dependent volatility behavior and perceptual time dilation during financial crises, we develop a regime-switching framework based on the Modified Lognormal Power-Law distribution. Analysis of the FCIX from January 1990 to December 2023 identifies three distinct market regimes, low-chaos, intermediate-chaos, and high-chaos, each characterized by differing levels of systemic stress, statistical dispersion and persistence characteristics. Building upon the segmented regime structure, we further examine the informational forces that shape forward-looking market expectations. Using sentiment-based predictors derived from the Equity Market Volatility tracker, we employ an elastic net regression model to forecast implied volatility, as proxied by the VIX index. Our findings indicate that shifts in macroeconomic, financial, policy, and geopolitical uncertainty exhibit strong predictive power for volatility dynamics across regimes. Together, these results offer a unified empirical perspective on how systemic uncertainty governs both the realized evolution of financial markets and the anticipatory behavior embedded in implied volatility measures.
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