Market efficiency relies fundamentally on stable liquidity. Consequently, forecasting liquidity dynamics is a priority for both investors and regulators. We introduce a new tail-risk metric, Illiquidity-at-Risk (IlliQaR), designed to quantify the magnitude of extreme liquidity dry-ups. Relying upon the realized Amihud (a precise illiquidity measurement derived from high-frequency data as the ratio of realized volatility to trading volume) we assess the predictive power of various linear and non-linear econometric models, with a specific focus on the impact of discontinuous jump components. Accounting for these jumps is essential for achieving accurate probability coverage and better IlliQaR predictions during periods of systemic stress, where standard continuous models systematically underestimate the severity of liquidity evaporation. Our empirical analysis, encompassing the S&P 500 index and a cross-section of 25 large U.S. equities, demonstrates that incorporating jumps significantly improves forecasts of illiquidity. Our results suggest that individual stock IlliQaR violations often cluster during periods of S&P 500 liquidity stress. This indicates that Illiquidity at Risk is not just a localized concern but a systemic one, where the main index acts as a leading indicator for extreme dry-ups in individual stock liquidity.
We develop a simple theory of realized illiquidity, defined as the ratio of realized volatility to trading volume. Building on the widely used price impact measure of Amihud (2002), we introduce the realized Amihud, which significantly improves measurement accuracy. Our theoretical and numerical results show that it ro...
Demetrio Lacava, Angelo Ranaldo, Paolo Santucci de Magistris· Management Sciences· 0 citations
To reconstruct the monthly S&P 500 membership from 2007 to 2025, this paper employs public records. This work is trying to minimize universe look-ahead bias of a sample limited to the constituents of a universe. The membership snapshot at the end of each month is used for the construction of the portfolio. It is not ne...
Yan-Qi Jia· Advances in Economics, Manag...· 0 citations
We propose a new model of expected stock returns that incorporates quantity information from market trading activities into the factor pricing framework. We posit that the expected return of a stock is determined by not only its factor risk exposures (beta) but also the factor's quantity fluctuations (q) induced by tra...
This study analyzes the microstructural mechanisms through which the rapidly expanding single-stock leveraged ETFs in the Korean capital market impede the price discovery function and amplify endogenous volatility. Based on a dynamic simulation utilizing the actual market scales of large-cap semiconductor stocks, the r...
Sun-Joong Yoon· Korean Journal of Financial...· 0 citations
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