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논문 기본 정보

자료유형
학술저널
저자정보
박찬 (호서대학교) 문남미 (호서대학교)
저널정보
한국정보처리학회 JIPS(Journal of Information Processing Systems) JIPS(Journal of Information Processing Systems) 제19권 제1호
발행연도
2023.2
수록면
67 - 79 (13page)
DOI
10.3745/JIPS.02.0190

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초록· 키워드

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In the image field, data augmentation refers to increasing the amount of data through an editing method suchas rotating or cropping a photo. In this study, a generative adversarial network (GAN) image was created usingCycleGAN, and various colors of dogs were reflected through data augmentation. In particular, dog data fromthe Stanford Dogs Dataset and Oxford-IIIT Pet Dataset were used, and 10 breeds of dog, corresponding to 300images each, were selected. Subsequently, a GAN image was generated using CycleGAN, and four learninggroups were established: 2,000 original photos (group I); 2,000 original photos + 1,000 GAN images (groupII); 3,000 original photos (group III); and 3,000 original photos + 1,000 GAN images (group IV). The amountof data in each learning group was augmented using existing data augmentation methods such as rotating,cropping, erasing, and distorting. The augmented photo data were used to train the MobileNet_v3_Large,ResNet-152, InceptionResNet_v2, and NASNet_Large frameworks to evaluate the classification accuracy andloss. The top-3 accuracy for each deep neural network model was as follows: MobileNet_v3_Large of 86.4%(group I), 85.4% (group II), 90.4% (group III), and 89.2% (group IV); ResNet-152 of 82.4% (group I), 83.7%(group II), 84.7% (group III), and 84.9% (group IV); InceptionResNet_v2 of 90.7% (group I), 88.4% (groupII), 93.3% (group III), and 93.1% (group IV); and NASNet_Large of 85% (group I), 88.1% (group II), 91.8%(group III), and 92% (group IV). The InceptionResNet_v2 model exhibited the highest image classificationaccuracy, and the NASNet_Large model exhibited the highest increase in the accuracy owing to dataaugmentation.

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