Recent Advances in Transfer Learning for Cross-Dataset Visual Recognition: A Problem-Oriented Perspective

被引:74
|
作者
Zhang, Jing [1 ]
Li, Wanqing [1 ]
Ogunbona, Philip [1 ]
Xu, Dong [2 ]
机构
[1] Univ Wollongong, Northfields Ave, Wollongong, NSW 2522, Australia
[2] Univ Sydney, Western Ave, Sydney, NSW 2006, Australia
基金
澳大利亚研究理事会;
关键词
Cross-dataset recognition; domain adaptation; UNSUPERVISED DOMAIN ADAPTATION; RGB IMAGES; KNOWLEDGE; FEATURES; KERNEL; SPACE;
D O I
10.1145/3291124
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
This article takes a problem-oriented perspective and presents a comprehensive review of transfer-learning methods, both shallow and deep, for cross-dataset visual recognition. Specifically, it categorises the cross-dataset recognition into 17 problems based on a set of carefully chosen data and label attributes. Such a problem-oriented taxonomy has allowed us to examine how different transfer-learning approaches tackle each problem and how well each problem has been researched to date. The comprehensive problem-oriented review of the advances in transfer learning with respect to the problem has not only revealed the challenges in transfer learning for visual recognition but also the problems (e.g., 8 of the 17 problems) that have been scarcely studied. This survey not only presents an up-to-date technical review for researchers but also a systematic approach and a reference for a machine-learning practitioner to categorise a real problem and to look up for a possible solution accordingly.
引用
收藏
页数:38
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