PRIMAL-DUAL STOCHASTIC SUBGRADIENT METHOD FOR LOG-DETERMINANT OPTIMIZATION

被引:0
|
作者
Wu, Songwei [1 ]
Yu, Hang [1 ]
Dauwels, Justin [1 ]
机构
[1] Nanyang Technol Univ, Sch Elect & Elect Engn, 50 Nanyang Ave, Singapore 639798, Singapore
关键词
Log-determinant optimization; general matrix inequalities; primal-dual subgradient descent; stochastic optimization; SPARSE; ALGORITHM;
D O I
10.1109/icassp40776.2020.9053645
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
The log-determinant optimization problem with general matrix constraints arises in many applications. The log-determinant term hampers the scalability of existing methods. This paper proposes a highly efficient stochastic method that has time complexity O(N-2), whereas existing methods have complexity O(N-3). In order to achieve the quadratic complexity, the proposed algorithm leverages an efficient stochastic gradient of the augmented Lagrangian form and relies on subgradient descent method. Convergence of this method is analyzed both theoretically and empirically. The resulting primal-dual stochastic subgradient method yields the same accuracy as existing methods yet only requires O(N-2) operations.
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页码:3117 / 3121
页数:5
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