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A Speech Data-Driven Stakeholder Analysis Methodology Based on the Stakeholder Graph Models

机译:基于涉众图模型的语音数据驱动的涉众分析方法

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Among the requirements elicitation activities, the stakeholder analysis is the main source of requirements. In this article, we propose a new model of data-driven stakeholder analysis, named SIG (Stakeholder Intention Graph), a semantic extension of property graph model that can represent the stakeholders' intentions and their relationships. To elicit the stakeholders' intentions from the speech data during meetings, we developed a system of structural analysis and SIG generation method from speech data. Based on the graph theory, we also propose an analysis methodology of stakeholders' intentions and their structure with both global and local graph analyses. We implemented a speech data-driven stakeholder analysis system on the graph database Neo4j. As the output, the analysis system automatically generates the stakeholder matrix from the speech data at the meetings. We applied the analysis method and system to the speech data of actual development meetings on the public service systems, and demonstrated the effectiveness of the proposed method.
机译:在需求启发活动中,利益相关者分析是需求的主要来源。在本文中,我们提出了一种新的数据驱动的利益相关者分析模型,称为SIG(利益相关者意图图),这是属性图模型的语义扩展,可以表示利益相关者的意图及其关系。为了在会议期间从语音数据中引起利益相关者的意图,我们开发了一种结构分析和语音数据SIG生成方法的系统。基于图论,我们还通过全局和局部图分析提出了一种利益相关者意图及其结构的分析方法。我们在图形数据库Neo4j上实现了语音数据驱动的利益相关者分析系统。作为输出,分析系统会根据会议上的语音数据自动生成利益相关者矩阵。我们将分析方法和系统应用于公共服务系统上的实际开发会议的语音数据,并证明了该方法的有效性。

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