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1. SleepEEGNet: Automated sleep stage scoring with sequence to sequence deep learning approach.

2. Antenna selection for multiple-input multiple-output systems based on deep convolutional neural networks.

3. Improving classification of pollen grain images of the POLEN23E dataset through three different applications of deep learning convolutional neural networks.

4. Biomedical literature classification with a CNNs-based hybrid learning network.

5. Fallback Variable History NNLMs: Efficient NNLMs by precomputation and stochastic training.