Tìm kiếm theo: Tác giả Heung-Seok, Chae

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  • Tác giả : Young-Woo, Lee; Heung-Seok, Chae;  Người hướng dẫn: -;  Đồng tác giả: - (2023)

    Convolutional neural networks (CNNs), a representative type of deep neural networks, are used in various fields. There are problems that should be solved to operate CNN in the real-world. In real-world operating environments, the CNN’s performance may be degraded due to data of untrained types, which limits its operability. In this study, we propose a method for identifying data of a type that the model has not trained on based on the neuron cluster, a set of neurons activated based on the type of input data. In experiments performed on the ResNet model with the MNIST, CIFAR-10, and STL-10 datasets, the proposed method identifies data of untrained and trained types with an accuracy of...