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Guan Gui

4 accepted papers

2024

Few-Shot Anomaly-Driven Generation for Anomaly Classification and Segmentation

ECCV 2024poster

"Anomaly detection is a practical and challenging task due to the scarcity of anomaly samples in industrial inspection. Some existing anomaly detection methods address this issue by synthesizing anomalies with noise or external data. However, there is always a large semantic gap between synthetic an…

2023

Enhancing Sample Utilization through Sample Adaptive Augmentation in Semi-Supervised Learning

ICCV 2023oral

In semi-supervised learning, unlabeled samples can be utilized through augmentation and consistency regularization. However, we observed certain samples, even undergoing strong augmentation, are still correctly classified with high confidence, resulting in a loss close to zero. It indicates that the…

Cited by 12PDFcodeScholar
2023

Yet Another Traffic Classifier: A Masked Autoencoder Based Traffic Transformer with Multi-Level Flow Representation

AAAI 2023technical

Traffic classification is a critical task in network security and management. Recent research has demonstrated the effectiveness of the deep learning-based traffic classification method. However, the following limitations remain: (1) the traffic representation is simply generated from raw packet byt…

2022

Improving Barely Supervised Learning by Discriminating Unlabeled Samples with Super-Class

NeurIPS 2022accept

In semi-supervised learning (SSL), a common practice is to learn consistent information from unlabeled data and discriminative information from labeled data to ensure both the immutability and the separability of the classification model. Existing SSL methods suffer from failures in barely-superv…

Cited by 15SourcePDFScholar