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Generating English summaries of time series data using the Gricean maxims

机译:使用Gricean格言生成时间序列数据的英语摘要

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摘要

We are developing technology for generating English textual summaries of time-series data, in three domains: weather forecasts, gas-turbine sensor readings, and hospital intensive care data. Our weather-forecast generator is currently operational and being used daily by a meteorological company. We generate summaries in three steps: (a) selecting the most important trends and patterns to communicate; (b) mapping these patterns onto words and phrases; and (c) generating actual texts based on these words and phrases. In this paper we focus on the first step, (a), selecting the information to communicate, and describe how we perform this using modified versions of standard data analysis algorithms such as segmentation. The modifications arose out of empirical work with users and domain experts, and in fact can all be regarded as applications of the Gricean maxims of Quality, Quantity, Relevance, and Manner, which describe how a cooperative speaker should behave in order to help a hearer correctly interpret a text. The Gricean maxims are perhaps a key element of adapting data analysis algorithms for effective communication of information to human users, and should be considered by other researchers interested in communicating data to human users.
机译:我们正在开发用于在以下三个领域中生成时间序列数据的英文文本摘要的技术:天气预报,燃气轮机传感器读数和医院重症监护数据。我们的天气预报发电机目前正在运行,气象公司每天都在使用它。我们通过三个步骤生成摘要:(a)选择最重要的趋势和方式进行交流; (b)将这些模式映射到单词和短语上; (c)根据这些单词和短语生成实际文本。在本文中,我们着重于第一步(a),选择要交流的信息,并描述我们如何使用标准数据分析算法(例如细分)的修改版本执行此操作。修改来自用户和领域专家的经验工作,实际上,所有修改都可以视为Gricean品质,数量,相关性和礼仪准则的应用,这些准则描述了合作演讲者应如何行为以帮助听众正确解释文本。 Gricean格言也许是调整数据分析算法以有效地将信息传达给人类用户的关键要素,并且其他有兴趣将数据传达给人类用户的研究人员也应考虑使用Gricean准则。

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