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Corpus construction for topic-based summarization of multi-party conversation | IEEE Conference Publication | IEEE Xplore

Corpus construction for topic-based summarization of multi-party conversation


Abstract:

In this paper, we report corpus construction and topic-based summarization methods for multi-party conversation. We have already constructed reference summaries and a lis...Show More

Abstract:

In this paper, we report corpus construction and topic-based summarization methods for multi-party conversation. We have already constructed reference summaries and a list of important utterances in each discussion. However, fine-grained summaries about topics in a discussion often are desired in many situations. Therefore, we construct topic-based summaries and propose an important utterance extraction method and two summarization processes using the extracted utterances; extractive and abstractive methods. For the important utterance extraction, we use SVMs with 12 types of features. We use mBART, which is a neural network-based model, as the abstractive method. In the experiment, the extractive method was superior in terms of “accuracy as a summary (relevance), “ while the readability of the abstractive method was superior.
Date of Conference: 11-13 December 2021
Date Added to IEEE Xplore: 19 January 2022
ISBN Information:
Conference Location: Singapore, Singapore
Department of Artificial Intelligence, Kyushu Institute of Technology, Kawazu Iizuka Fukuoka, Japan
Graduate School of Computer Science, Kyushu Institute of Technology, Kawazu Iizuka Fukuoka, Japan
Department of Artificial Intelligence, Kyushu Institute of Technology, Kawazu Iizuka Fukuoka, Japan

Department of Artificial Intelligence, Kyushu Institute of Technology, Kawazu Iizuka Fukuoka, Japan
Graduate School of Computer Science, Kyushu Institute of Technology, Kawazu Iizuka Fukuoka, Japan
Department of Artificial Intelligence, Kyushu Institute of Technology, Kawazu Iizuka Fukuoka, Japan
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