HPT: Hierarchy-aware Prompt Tuning for Hierarchical Text Classification
Zihan Wang, Peiyi Wang, Tianyu Liu, Binghuai Lin, Yunbo Cao, Zhifang Sui, Houfeng Wang
摘要
Hierarchical text classification (HTC) is a challenging subtask of multi-label classification due to its complex label hierarchy. Recently, the pretrained language models (PLM) have been widely adopted in HTC through a finetuning paradigm. However, in this paradigm, there exists a huge gap between the classification tasks with sophisticated label hierarchy and the masked language model (MLM) pretraining tasks of PLMs and thus the potential of PLMs cannot be fully tapped. To bridge the gap, in this paper, we propose HPT, a Hierarchy-aware Prompt Tuning method to handle HTC from a multi-label MLM perspective. Specifically, we construct a dynamic virtual template and label words that take the form of soft prompts to fuse the label hierarchy knowledge and introduce a zero-bounded multi-label cross-entropy loss to harmonize the objectives of HTC and MLM. Extensive experiments show HPT achieves state-of-the-art performances on 3 popular HTC datasets and is adept at handling the imbalance and low resource situations. Our code is available at https://github.com/wzh9969/HPT .
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引用它的顶会 Paper8
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它引用的顶会 Paper8
- AutoPrompt: Eliciting Knowledge from Language Models with Automatically Generated PromptsTaylor Shin, Yasaman Razeghi, Robert L. Logan IV, Eric Wallace 等EMNLP 2020 · 被引用 1,162 次
- KnowPrompt: Knowledge-aware Prompt-tuning with Synergistic Optimization for Relation ExtractionXiang Chen, Ningyu Zhang, Xin Xie, Shumin Deng 等WWW 2022 · 被引用 488 次
- Incorporating Hierarchy into Text Encoder: a Contrastive Learning Approach for Hierarchical Text ClassificationZihan Wang, Peiyi Wang, Lianzhe Huang, Xin Sun 等ACL 2022 · 被引用 157 次
- Hyperbolic Interaction Model for Hierarchical Multi-Label ClassificationBoli Chen, Xin Huang, Lin Xiao, Zixin Cai 等AAAI 2020 · 被引用 78 次
- WARP: Word-level Adversarial ReProgrammingKaren Hambardzumyan, Hrant Khachatrian, Jonathan MayACL 2021
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