An Event-Centric Knowledge Graph Approach for Public Administration as an Enabler for Data Analytics

Dimitris Zeginis, Konstantinos Tarabanis
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Abstract

In a continuously evolving environment, organizations, including public administrations, need to quickly adapt to change and make decisions in real-time. This requires having a real-time understanding of their context that can be achieved by adopting an event-native mindset in data management which focuses on the dynamics of change compared to the state-based traditional approaches. In this context, this paper proposes the adoption of an event-centric knowledge graph approach for the holistic data management of all data repositories in public administration. Towards this direction, the paper proposes an event-centric knowledge graph model for the domain of public administration that captures these dynamics considering events as first-class entities for knowledge representation. The development of the model is based on a state-of-the-art analysis of existing event-centric knowledge graph models that led to the identification of core concepts related to event representation, on a state-of-the-art analysis of existing public administration models that identified the core entities of the domain, and on a theoretical analysis of concepts related to events, public services, and effective public administration in order to outline the context and identify the domain-specific needs for event modeling. Further, the paper applies the model in the context of Greek public administration in order to validate it and showcase the possibilities that arise. The results show that the adoption of event-centric knowledge graph approaches for data management in public administration can facilitate data analytics, continuous integration, and the provision of a 360-degree-view of end-users. We anticipate that the proposed approach will also facilitate real-time decision-making, continuous intelligence, and ubiquitous AI.
以事件为中心的公共行政知识图谱方法是数据分析的推动力
在不断变化的环境中,包括公共管理部门在内的组织需要快速适应变化并实时做出决策。与基于状态的传统方法相比,在数据管理中采用事件本位的思维方式可以关注变化的动态,从而实现对环境的实时了解。在此背景下,本文建议采用以事件为中心的知识图谱方法,对公共管理部门的所有数据存储库进行整体数据管理。为此,本文为公共管理领域提出了以事件为中心的知识图谱模型,该模型将事件视为知识表示的一级实体,可捕捉这些动态变化。该模型的开发基于对现有的以事件为中心的知识图谱模型的最新分析,通过分析确定了与事件表征相关的核心概念;基于对现有的公共管理模型的最新分析,确定了该领域的核心实体;基于对与事件、公共服务和有效公共管理相关的概念的理论分析,概述了事件建模的背景并确定了特定领域的需求。此外,本文还将该模型应用于希腊的公共行政领域,以验证该模型并展示由此产生的可能性。结果表明,在公共管理数据管理中采用以事件为中心的知识图谱方法可以促进数据分析、持续集成和提供 360 度的终端用户视图。我们预计,所提出的方法还将促进实时决策、持续智能和无处不在的人工智能。
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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