Toward a Natural Language-Based Approach for the Specification of Decisional-Users Requirements

Abeer A. Alzahrani, J. Feki
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引用次数: 1

Abstract

The number of organizations adopting the Data Warehouse (DW) technology along with data analytics in order to improve the effectiveness of their decision–making processes is permanently increasing. Despite the efforts invested, the DW design remains a great challenge research domain. More accurately, the design quality of the DW depends on several aspects; among them, the requirement-gathering phase is a critical and complex task. In this context, we propose a Natural language (NL) NL-template based design approach, which is twofold; firstly, it facilitates the involvement of decision-makers in the early step of the DW design; indeed, using NL is a good and natural means to encourage the decision-makers to express their requirements as query-like English sentences. Secondly, our approach aims to generate a DW multidimensional schema from a set of gathered requirements (as OLAP: On-Line-Analytical-Processing queries, written according to the NL suggested templates). This approach articulates around: (i) two NL-templates for specifying multidimensional components, and (ii) a set of five heuristic rules for extracting the multidimensional concepts from requirements. Really, we are developing a software prototype that accepts the decision-makers' requirements then automatically identifies the multidimensional components of the DW model.
基于自然语言的决策用户需求描述方法研究
为了提高决策过程的有效性,采用数据仓库(DW)技术和数据分析的组织数量正在不断增加。尽管付出了努力,但DW设计仍然是一个巨大的挑战研究领域。更准确地说,DW的设计质量取决于几个方面;其中,需求收集阶段是一项关键而复杂的任务。在这种背景下,我们提出了一种基于自然语言模板的设计方法,它有两个方面;首先,它有利于决策者在DW设计的早期阶段的参与;事实上,使用自然语言是一种很好的、自然的手段,可以鼓励决策者将他们的需求表达为类似查询的英语句子。其次,我们的方法旨在从一组收集到的需求(作为OLAP:在线分析处理查询,根据NL建议的模板编写)生成DW多维模式。该方法围绕:(i)两个用于指定多维组件的nl模板,以及(ii)一组用于从需求中提取多维概念的五个启发式规则进行阐述。实际上,我们正在开发一个软件原型,它接受决策者的需求,然后自动识别DW模型的多维组件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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