JOURNAL ARTICLE

A Momentum-Guided Frank-Wolfe Algorithm

Bingcong LiMario CoutiñoGeorgios B. GiannakisGeert Leus

Year: 2021 Journal:   IEEE Transactions on Signal Processing Vol: 69 Pages: 3597-3611   Publisher: Institute of Electrical and Electronics Engineers

Abstract

With the well-documented popularity of Frank Wolfe (FW) algorithms in machine learning tasks, the present paper establishes links between FW subproblems and the notion of momentum emerging in accelerated gradient methods (AGMs). On the one hand, these links reveal why momentum is unlikely to be effective for FW-type algorithms on general problems. On the other hand, it is established that momentum accelerates FW on a class of signal processing and machine learning applications. Specifically, it is proved that a momentum variant of FW, here termed accelerated Frank Wolfe (AFW), converges with a faster rate ${\\cal O}(\\frac{1}{k^2})$ on such a family of problems, despite the same ${\\cal O}(\\frac{1}{k})$ rate of FW on general cases. Distinct from existing fast convergent FW variants, the faster rates here rely on parameter-free step sizes. Numerical experiments on benchmarked machine learning tasks corroborate the theoretical findings.

Keywords:
Algorithm Momentum (technical analysis) Artificial intelligence Computer science Machine learning Signal processing Mathematics Digital signal processing

Metrics

24
Cited By
3.14
FWCI (Field Weighted Citation Impact)
78
Refs
0.90
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Sparse and Compressive Sensing Techniques
Physical Sciences →  Engineering →  Computational Mechanics
Stochastic Gradient Optimization Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence
Machine Learning and ELM
Physical Sciences →  Computer Science →  Artificial Intelligence

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