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职称
办公室
6号楼419
邮箱
qulianq@amss.ac.cn
个人简介
开设课程
本科生: 概率论基础、数理统计 研究生: 统计推断、生存数据分析
研究方向
生存分析、高维数据分析、网络数据分析
教育经历
2012/09 -2017/07: 中科院数学与系统科学研究院 2008/09-2012/07: 山东农业大学,本科
工作经历
2017/07-至今: js6666金沙登录入口,讲师 2016/01-2016/03: 香港中文大学统计系,访问学者,香港
研究成果
[1] Lianqiang Qu, Liuquan Sun and Yanqing Sun. (2023). Mark-specific quantile regression model. Biometrika (accepted). [2] Yuqing Du (MS joint with Ting Yan), Lianqiang Qu, Ting Yan and Yuan, Zhang. (2023) Time-varying 𝜷-model for dynamic directed networks. Scandinavian Journal of Statistics (accepted). [3] Dongxiao Han, Jian Huang, Yuanyuan Lin, Lei Liu, Lianqiang Qu and Liuquan Sun. (2022). Robust Signal Recovery for High-Dimensional Linear Log-Contrast Models with Compositional Covariates, Journal of Business & Economic Statistics, accepted. [4] Lianqiang Qu, Xiaoyu Wang and Liuquan Sun. (2022). Variable screening for varying coefficient models with ultrahigh-dimensional survival data. Computational Statistics and Data Analysis, accepted. [5] Lianqiang Qu, Meiling Hao and Liuquan Sun. (2022). Sparse composite quantile regression with ultra-high dimensional heterogeneous data. Statistica Sinica, 32, 459-475. [6] Meiling Hao*, Lianqiang Qu*, Dehan Kong, Liuquan Sun and Hongtu Zhu. (2021). Optimal minimax variable selection for large-scale matrix linear regression model. Journal of Machine Learning Research, 22, 1-39 (Co-first authors). [7] Dongxiao Han*, Lianqiang Qu*, Liuquan Sun and Yanqing Sun. (2021) Variable selection for the mark-specific additive hazards model using the adaptive Lasso. Statistical Methods in Medical Research, 30, 2017-2031 (Co-first authors). [8] Lianqiang Qu and Liuquan Sun. (2021). A non-marginal variable screening method for varying coefficient Cox model. Statistics and Its Interface, 14, 197–209. [9] Dongxiao Han, Meiling Hao, Lianqiang Qu and Wei Xu, (2020). A novel model for the X-chromosome inactivation association on survival data. Statistical Methods in Medical Research, 1305-1314. [10] Lianqiang Qu and Liuquan Sun. (2019). The Cox-Aalen model for recurrent event data with a dependent terminal event. Statistica Neerlandica, 73, 234–255. [11] Lianqiang Qu, Xinyuan Song and Liuquan Sun, (2018). Identification of local sparsity and variable selection for additive hazard model with varying coefficients. Computational Statistics & Data Analysis, 125, 119-135. [12] Ting Yan, Lianqiang Qu, Zhaohai, Li and Ao Yuan, (2018). Conditional kernel density estimation for some incomplete data models. Electronic Journal of Statistics, 12, 1299–1329. [13] Lianqiang Qu, Liuquan Sun and Xinyuan Song, (2018). A joint modeling approach for longitudinal data with informative observation times and a terminal event. Statistics in Biosciences: 10, 609–633. [14] Lianqiang Qu, Liuquan Sun and Lei Liu, (2017). Joint modeling of recurrent event data with a dependent terminal event. Statistics and Its Interface: 10, 699–710. [15] Hu Zhang, Qinglong Yang and Lianqiang Qu, (2016). A class of transformation rate models for recurrent event data. Science China Mathematics: 59, 2227-2244.
研究项目
(1) 上海市纳税风险识别模型技术研究(横向),2015年; (2) 湖北省自然科学基金青年项目: 带终止时间的复发事件数据统计建模及其在医学中的应用(2018.1-2020.12,结题) (3) 国家自然科学基金青年项目:带竞争风险的分位数回归分析 (2021.1-2023.12,在研)
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