Mediating Role of Organizational Learning in the Relationship between Use of Artificial Intelligence Security Technology and Community Security

Amna Ali Abdulla Mohammed Almakki Alhajeri, Edie Ezwan Mohd Safian
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Abstract

This study focuses on developing a robust model to augment community security through the implementation of AI, while simultaneously investigating the mediating influence of organizational learning within the context of vital AI factors in the UAE. The model examines the interplay among key AI elements, such as compatibility (COMPAT), complexity (COMPLEX), management support (MS), ethics (ETH), and staff capabilities (SC), concerning their impact on the effectiveness of Community Security (ESC). Data collection was conducted via a questionnaire survey utilizing the Abu Dhabi Police as a representative case study for public organizations in the UAE, involving 138 participants spanning both managerial and operational roles, with responses acquired through randomized distribution using online tools. The amassed data was employed to construct the model using SmartPLS software, and its evaluation adhered to assessment criteria encompassing measurement and structural components. A goodness-of-fit score of 0.751 indicated a high level of overall predictive performance for the model. The study's findings revealed that organizational learning (OL) serves as a partial mediator in the relationship between the complexity construct (COMPLEX) and the effectiveness of Community Security (ESC), with no observed mediation effects in other relationships. The research outcomes culminated in the creation of a versatile model that enhances community security through AI technology, applicable across diverse scenarios, and benefiting individuals invested in AI and community security, such as academics, researchers, and practitioners. The study's methodology provides valuable insights for practitioners and researchers in the UAE and related fields, affording opportunities for replication or adaptation to suit specific investigative contexts.
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组织学习在人工智能安全技术使用与社区安全关系中的中介作用
本研究的重点是开发一个强大的模型,通过实施人工智能来增强社区安全,同时调查阿联酋重要人工智能因素背景下组织学习的中介影响。该模型考察了关键人工智能要素之间的相互作用,如兼容性(COMPAT)、复杂性(COMPLEX)、管理支持(MS)、道德(ETH)和员工能力(SC),以及它们对社区安全(ESC)有效性的影响。数据收集是通过问卷调查进行的,利用阿布扎比警察作为阿联酋公共组织的代表性案例研究,涉及138名参与者,包括管理和运营角色,并通过使用在线工具随机分配获得回复。利用SmartPLS软件将收集到的数据构建模型,其评估遵循包括测量和结构成分在内的评估标准。拟合优度得分为0.751,表明模型的整体预测性能较高。研究发现,组织学习在复杂性结构(COMPLEX)与社区安全(ESC)有效性的关系中起部分中介作用,在其他关系中未发现中介作用。研究成果最终形成了一个通用模型,通过人工智能技术增强社区安全,适用于各种场景,并使投资于人工智能和社区安全的个人(如学者、研究人员和从业人员)受益。该研究的方法为阿联酋及相关领域的从业者和研究人员提供了有价值的见解,提供了复制或适应特定调查背景的机会。
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CiteScore
0.90
自引率
20.00%
发文量
25
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