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      DomBERT: Domain-oriented Language Model for Aspect-based Sentiment Analysis

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          Abstract

          This paper focuses on learning domain-oriented language models driven by end tasks, which aims to combine the worlds of both general-purpose language models (such as ELMo and BERT) and domain-specific language understanding. We propose DomBERT, an extension of BERT to learn from both in-domain corpus and relevant domain corpora. This helps in learning domain language models with low-resources. Experiments are conducted on an assortment of tasks in aspect-based sentiment analysis, demonstrating promising results.

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          Journal
          28 April 2020
          Article
          2004.13816
          97271a9c-6363-4bb5-bc93-3dd2a435697f

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          cs.CL

          Theoretical computer science
          Theoretical computer science

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