A Telecom-Domain Online Customer Service Assistant Based on Question Answering with Word Embedding and Intent Classification

نویسندگان

  • Jui-Yang Wang
  • Min-Feng Kuo
  • Jen-Chieh Han
  • Chao-Chuang Shih
  • Chun-Hsun Chen
  • Po-Ching Lee
  • Richard Tzong-Han Tsai
چکیده

In the paper, we propose an information retrieval based (IR-based) Question Answering (QA) system to assist online customer service staffs respond users in the telecom domain. When user asks a question, the system retrieves a set of relevant answers and ranks them. Moreover, our system uses a novel reranker to enhance the ranking result of information retrieval. It employs the word2vec model to represent the sentences as vectors. It also uses a sub-category feature, predicted by the knearest neighbor algorithm. Finally, the system returns the top five candidate answers, making online staffs find answers much more efficiently.

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تاریخ انتشار 2017