Bridge-Based Active Domain Adaptation for Aspect Term Extraction
Zhuang Chen, Tieyun Qian
Abstract
As a fine-grained task, the annotation cost of aspect term extraction is extremely high. Recent attempts alleviate this issue using domain adaptation that transfers common knowledge across domains. Since most aspect terms are domain-specific, they cannot be transferred directly. Existing methods solve this problem by associating aspect terms with pivot words (we call this passive domain adaptation because the transfer of aspect terms relies on the links to pivots). However, all these methods need either manually labeled pivot words or expensive computing resources to build associations. In this paper, we propose a novel active domain adaptation method. Our goal is to transfer aspect terms by actively supplementing transferable knowledge. To this end, we construct syntactic bridges by recognizing syntactic roles as pivots instead of as links to pivots. We also build semantic bridges by retrieving transferable semantic prototypes. Extensive experiments show that our method significantly outperforms previous approaches.
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Cited by top-tier papers2
- Cross-Domain Data Augmentation with Domain-Adaptive Language Modeling for Aspect-Based Sentiment AnalysisJianfei Yu, Qiankun Zhao, Rui XiaACL 2023 · 19 citations
- Self-training through Classifier Disagreement for Cross-Domain Opinion Target ExtractionKai Sun, Richong Zhang, Samuel Mensah, Nikolaos Aletras et al.WWW 2023 · 2 citations
Builds on4
- Relation-Aware Collaborative Learning for Unified Aspect-Based Sentiment AnalysisZhuang Chen, Tieyun QianACL 2020 · 194 citations
- Multi-Source Domain Adaptation for Text Classification via DistanceNet-BanditsHan Guo, Ramakanth Pasunuru, Mohit BansalAAAI 2020 · 120 citations
- Unified Feature and Instance Based Domain Adaptation for Aspect-Based Sentiment AnalysisChenggong Gong, Jianfei Yu, Rui XiaEMNLP 2020 · 66 citations
- Enhancing Aspect Term Extraction with Soft PrototypesZhuang Chen, Tieyun QianEMNLP 2020 · 56 citations
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