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FNS-Summarisation 2020 shared task: system description paper Extractive Summarization System for Annual Reports

机译:FNS-Sumarisisation 2020共享任务:系统描述年度报告的提取摘要系统

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摘要

In this paper, we report on our experiments in building a summarization system for generating summaries from annual reports. We adopt an "extractive" summarization approach in our hybrid system combining neural networks and rules-based algorithms with the expectation that such a system may capture key sentences or paragraphs from the data. A rules-based TOC (Table Of Contents) extraction and a binary classifier of narrative section titles are main components of our system allowing to identify narrative sections and best candidates for extracting final summaries. As result, we propose one to three summaries per document according to the classification score of narrative section titles.
机译:在本文中,我们报告了我们的实验,建立了从年度报告中产生摘要的摘要制度。 我们在与神经网络和基于规则的算法结合的混合系统中采用了“提取”摘要方法,以期望这样的系统可以捕获来自数据的密钥句子或段落。 基于规则的TOC(目录)提取和叙述部分标题的二进制分类器是我们系统的主要组成部分,允许识别叙述部分和最佳候选人来提取最终摘要。 因此,根据叙述部分标题的分类评分,我们提出了每份文件一到三次摘要。

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