The alternating direction method of multipliers (ADMM) is a natural method of choice for distributed parameter learning. For smooth and strongly convex consensus optimization problems, it has been shown that ADMM and some of its variants enjoy linear convergence in the distributed setting, much like in the traditional non-distributed setting. The optimization problem associated with parameter estimation in quantile regression is neither smooth nor strongly convex (although is convex) and thus it seems can only have sublinear convergence at best. Although this insinuates slow convergence, we show that, if the local sample size is sufficiently large compared to parameter dimension and network size, distributed estimation in quantile regression actually exhibits linear convergence up to the statistical precision, the precise meaning of which will be explained in the text.
机构:
Shanghai Univ Int Business & Econ, Sch Stat & Informat, Shanghai, Peoples R ChinaShanghai Univ Int Business & Econ, Sch Stat & Informat, Shanghai, Peoples R China
Fan, Yan
Liu, Yukun
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East China Normal Univ, Sch Stat, KLATASDS, MOE, Shanghai, Peoples R ChinaShanghai Univ Int Business & Econ, Sch Stat & Informat, Shanghai, Peoples R China
Liu, Yukun
Zhu, Lixing
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Shanghai Univ Int Business & Econ, Sch Stat & Informat, Shanghai, Peoples R China
Beijing Normal Univ, Ctr Stat & Data Sci, Zhuhai, Peoples R ChinaShanghai Univ Int Business & Econ, Sch Stat & Informat, Shanghai, Peoples R China
Zhu, Lixing
CANADIAN JOURNAL OF STATISTICS-REVUE CANADIENNE DE STATISTIQUE,
2021,
49
(04):
: 1039
-
1057
机构:
Xiamen Univ, Wang Yanan Inst Studies Econ WISE, Dept Stat & Data Sci, Sch Econ, Xiamen, Peoples R China
Xiamen Univ, MOE Key Lab Econometr, Xiamen, Peoples R ChinaXiamen Univ, Wang Yanan Inst Studies Econ WISE, Dept Stat & Data Sci, Sch Econ, Xiamen, Peoples R China
Zhong, Qixian
Wang, Jane-Ling
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机构:
Univ Calif Davis, Dept Stat, Davis, CA 95616 USAXiamen Univ, Wang Yanan Inst Studies Econ WISE, Dept Stat & Data Sci, Sch Econ, Xiamen, Peoples R China