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The Relative Contribution of Jumps to Total Price Variance

Journal of Financial EconometricsPublished 13 August 2005
Xin Huang
Citations847
SJR quartileQ1
SJR score1.99
SNIP1.83

Abstract

We examine tests for jumps based on recent asymptotic results; we interpret the tests as Hausman-type tests. Monte Carlo evidence suggests that the daily ratio z-statistic has appropriate size, good power, and good jump detection capabilities revealed by the confusion matrix comprised of jump classification probabilities. We identify a pitfall in applying the asymptotic approximation over an entire sample. Theoretical and Monte Carlo analysis indicates that microstructure noise biases the tests against detecting jumps, and that a simple lagging strategy corrects the bias. Empirical work documents evidence for jumps that account for 7% of stock market price variance. Copyright 2005, Oxford University Press.

Keywords

Economics, Econometrics and Finance