SuperpixelGridMasks Data Augmentation: Application to Precision Health and Other Real-world Data

被引:0
作者
Karim Hammoudi
Adnane Cabani
Bouthaina Slika
Halim Benhabiles
Fadi Dornaika
Mahmoud Melkemi
机构
[1] Université de Haute-Alsace,IRIMAS
[2] Université de Strasbourg,UNIROUEN, ESIGELEC, IRSEEM
[3] Normandie Univ,JUNIA, CNRS
[4] University of the Basque Country,IEMN
[5] Lebanese International University,undefined
[6] Beirut International University,undefined
[7] Université de Lille,undefined
[8] IKERBASQUE,undefined
来源
Journal of Healthcare Informatics Research | 2022年 / 6卷
关键词
Data analytics; Data augmentation; Predictive classification model; Deep learning; Health informatics; Precision health; Medical scans; Wellness; Real-world applications;
D O I
暂无
中图分类号
学科分类号
摘要
A novel approach of data augmentation based on irregular superpixel decomposition is proposed. This approach called SuperpixelGridMasks permits to extend original image datasets that are required by training stages of machine learning-related analysis architectures towards increasing their performances. Three variants named SuperpixelGridCut, SuperpixelGridMean, and SuperpixelGridMix are presented. These grid-based methods produce a new style of image transformations using the dropping and fusing of information. Extensive experiments using various image classification models as well as precision health and surrounding real-world datasets show that baseline performances can be significantly outperformed using our methods. The comparative study also shows that our methods can overpass the performances of other data augmentations. SuperpixelGridCut, SuperpixelGridMean, and SuperpixelGridMix codes are publicly available at https://github.com/hammoudiproject/SuperpixelGridMasks.
引用
收藏
页码:442 / 460
页数:18
相关论文
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Hammoudi K(undefined)undefined undefined undefined undefined-undefined
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Cabani A(undefined)undefined undefined undefined undefined-undefined
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Benhabiles H(undefined)undefined undefined undefined undefined-undefined