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Causality effects in return volatility measures with random times
Authors:Eric Renault  Bas J.M. Werker
Affiliation:1. University of North Carolina at Chapel Hill, NC, United States;2. CentER, Tilburg University, Tilburg, The Netherlands;3. Finance and Econometrics Group, CentER, Tilburg University, Tilburg, The Netherlands
Abstract:We provide a structural approach to identify instantaneous causality effects between durations and stock price volatility. So far, in the literature, instantaneous causality effects have either been excluded or cannot be identified separately from Granger type causality effects. By giving explicit moment conditions for observed returns over (random) duration intervals, we are able to identify an instantaneous causality effect. The documented causality effect has significant impact on inference for tick-by-tick data. We find that instantaneous volatility forecasts for, e.g., IBM stock returns must be decreased by as much as 40% when not having seen the next quote change before its (conditionally) median time. Also, instantaneous volatilities are found to be much higher than indicated by standard volatility assessment procedures using tick-by-tick data. For IBM, a naive assessment of spot volatility based on observed returns between quote changes would only account for 60% of the actual volatility. For less liquidly traded stocks at NYSE this effect is even stronger.
Keywords:Continuous time models   Granger causality   Instantaneous causality   Durations   Ultra-high frequency data   Volatility per trade
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