chiyuzhang
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README.md
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<p align="center" float="left">
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<p align="center">Publish at Findings of ACL 2023</p>
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[![Code License](https://img.shields.io/badge/Code%20License-Apache_2.0-green.svg)]()
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[![Data License](https://img.shields.io/badge/Data%20License-CC%20By%20NC%204.0-red.svg)]()
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Illustration of our proposed InfoDCL framework. We exploit distant/surrogate labels (i.e., emojis) to supervise two contrastive losses, corpus-aware contrastive loss (CCL) and Light label-aware contrastive loss (LCL-LiT). Sequence representations from our model should keep the cluster of each class distinguishable and preserve semantic relationships between classes.
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## Checkpoints of Models Pre-Trained with InfoDCL
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* InfoDCL-RoBERTa trained with TweetEmoji-EN: https://huggingface.co/UBC-NLP/InfoDCL-emoji
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* InfoDCL-RoBERTa trained with TweetHashtag-EN: https://huggingface.co/UBC-NLP/InfoDCL-hashtag
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<p align="center" float="left">
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<p align="center">Publish at Findings of ACL 2023</p>
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<p align="center"> <a href="https://arxiv.org/abs/2203.07648" target="_blank">Paper</a></p>
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[![Code License](https://img.shields.io/badge/Code%20License-Apache_2.0-green.svg)]()
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[![Data License](https://img.shields.io/badge/Data%20License-CC%20By%20NC%204.0-red.svg)]()
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</p>
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Illustration of our proposed InfoDCL framework. We exploit distant/surrogate labels (i.e., emojis) to supervise two contrastive losses, corpus-aware contrastive loss (CCL) and Light label-aware contrastive loss (LCL-LiT). Sequence representations from our model should keep the cluster of each class distinguishable and preserve semantic relationships between classes.
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## Checkpoints of Models Pre-Trained with InfoDCL
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* InfoDCL-RoBERTa trained with TweetEmoji-EN: https://huggingface.co/UBC-NLP/InfoDCL-emoji
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* InfoDCL-RoBERTa trained with TweetHashtag-EN: https://huggingface.co/UBC-NLP/InfoDCL-hashtag
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