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The Extraction of the Future-Oriented Sentences from Annual Reports

机译:从年度报告中提取未来导向的句子

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In annual securities report, various information such as results of diverse business performances, point of view about causation of these outcomes, and issues and challenges to be addressed in the near future are included. Most of previous researches proposed the extraction methods of important sentences containing causal information of past company's performances but not effort to address future company's issues from text materials. In this paper, we propose our original method to extract future-oriented sentences by the combination of two SVM identification models, one of which captures features of future and the other aims for purposes and means in sentences of Japanese annual reports. All mean evaluations of our models, which were precision, recall and F-score, showed more than almost 0.9 and indicated that by using our model, we can effectively collect future information about business activities from annual reports as well as other relevant sources, which would allow us to make unique investment decisions and to develop unprecedented investment methods.
机译:在年度证券报告中,包括各种业务表现的结果,对这些结果的原因的观点,以及在不久的将来待解决的问题和挑战。以前的大多数研究提出了含有过去公司表演的因果关系的重要句子的提取方法,而不是努力解决未来公司从案文材料中的问题。在本文中,我们提出了通过两个SVM识别模型的组合来提取未来导向的句子的原始方法,其中一个是捕获未来的特征,另一个目标是在日本报告的句子中的目的和手段。所有平均评估我们的模型是精确,召回和F分,显示超过0.9,并指出,通过使用我们的模型,我们可以有效地收集关于年度报告以及其他相关来源的未来有关业务活动的信息,以及其他相关来源将使我们能够做出独特的投资决策,并制定前所未有的投资方法。

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