DCSE combines domain confusion and self-ensembling for unsupervised adaptation.
arXiv research
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This work improves SSL by leveraging disentangled latent space for better self-ensembling.
Enhances robustness for time series classification using self-ensemble method.
SNTG improves semi-supervised learning by considering data connections.
SELF filters noisy labels to improve deep learning performance.
SEGCN uses a student-teacher framework to improve GCN's performance on semi-supervised learning.
New defense algorithm RSE improves neural network robustness against adversarial attacks.
SEP uses checkpoints to protect data from training good models.
DADC algorithm improves clustering for data with varying density.
Mantis improves time series classification using a transformer model trained on synthetic data.
Improved neural network robustness against adversarial attacks.
FedDST trains sparse sub-networks to improve efficiency in federated learning.