A Survey of Dataset Refinement for Problems in Computer Vision Datasets


연구 분야: Artificial Intelligence



학회: ACM Computing Surveys, Volume 56, Issue 7


초록

Large-scale datasets have played a crucial role in the advancement of computer vision. However, they often suffer from problems such as class imbalance, noisy labels, dataset bias, or high resource costs, which can inhibit model performance and reduce trustworthiness. With the advocacy of data-centric research, various data-centric solutions have been proposed to solve the dataset problems mentioned above. They improve the quality of datasets by re-organizing them, which we call dataset refinement. In this survey, we provide a comprehensive and structured overview of recent advances in dataset refinement for problematic computer vision datasets. Firstly, we summarize and analyze the various problems encountered in large-scale computer vision datasets. Then, we classify the dataset refinement algorithms into three categories based on the refinement process: data sampling, data subset selection, and active learning. In addition, we organize these dataset refinement methods according to the addressed data problems and provide a systematic comparative description. We point out that these three types of dataset refinement have distinct advantages and disadvantages for dataset problems, which informs the choice of the data-centric method appropriate to a particular research objective. Finally, we summarize the current literature and propose potential future research topics.


Author Profile
Zhijing Wan

National Engineering Research Center for Multimedia Software Institute of Artificial Intelligence School of Computer Science Wuhan University Wuhan China

China
Author Profile
Zhixiang Wang

Graduate School of Information Science and Technology The University of Tokyo Tokyo Japan

Andorra
Author Profile
Cheukting Chung

National Engineering Research Center for Multimedia Software Institute of Artificial Intelligence School of Computer Science Wuhan University Wuhan China

China

📄 논문 정보

발행 연도 2024년
인용수 11
출판 국가 Andorra, China
사이트 ACM
좋아요 수 0

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