A quantile regression model for failure-time data with time-dependent covariates
被引:10
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作者:
Gorfine, Malka
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机构:
Tel Aviv Univ, Dept Stat & Operat Res, Ramat Aviv, IL-6997801 Tel Aviv, IsraelTel Aviv Univ, Dept Stat & Operat Res, Ramat Aviv, IL-6997801 Tel Aviv, Israel
Gorfine, Malka
[1
]
Goldberg, Yair
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Univ Haifa, Dept Stat, Mt Carmel, IL-31905 Haifa, IsraelTel Aviv Univ, Dept Stat & Operat Res, Ramat Aviv, IL-6997801 Tel Aviv, Israel
Goldberg, Yair
[2
]
Ritov, Ya'acov
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Hebrew Univ Jerusalem, Dept Stat, Mt Scopus, IL-91905 Jerusalem, Israel
Univ Michigan, Dept Stat, Ann Arbor, MI 48194 USATel Aviv Univ, Dept Stat & Operat Res, Ramat Aviv, IL-6997801 Tel Aviv, Israel
Ritov, Ya'acov
[3
,4
]
机构:
[1] Tel Aviv Univ, Dept Stat & Operat Res, Ramat Aviv, IL-6997801 Tel Aviv, Israel
[2] Univ Haifa, Dept Stat, Mt Carmel, IL-31905 Haifa, Israel
Since survival data occur over time, often important covariates that we wish to consider also change over time. Such covariates are referred as time-dependent covariates. Quantile regression offers flexible modeling of survival data by allowing the covariates to vary with quantiles. This article provides a novel quantile regression model accommodating time-dependent covariates, for analyzing survival data subject to right censoring. Our simple estimation technique assumes the existence of instrumental variables. In addition, we present a doubly-robust estimator in the sense of Robins and Rotnitzky (1992, Recovery of information and adjustment for dependent censoring using surrogate markers. In: Jewell, N. P., Dietz, K. and Farewell, V. T. (editors), AIDS Epidemiology. Boston: Birkhaauser, pp. 297-331.). The asymptotic properties of the estimators are rigorously studied. Finite-sample properties are demonstrated by a simulation study. The utility of the proposed methodology is demonstrated using the Stanford heart transplant dataset.