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Soft Set Theory Based Decision Support System for Mining Electronic Government Dataset

机译:基于软件理论基于理论决策支持系统,用于采矿电子政府数据集

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摘要

Electronic government (e-gov) is applied to support performance and create more efficient and effective public services. Grouping data in soft-set theory can be considered as a decision-making technique for determining the maturity level of e-government use. So far, the uncertainty of the data obtained through the questionnaire has not been maximally used as an appropriate reference for the government in determining the direction of future e-gov development policy. This study presents the maximum attribute relative (MAR) based on soft set theory to classify attribute options. The results show that facilitation conditions (FC) are the highest variable in influencing people to use e-government, followed by performance expectancy (PE) and system quality (SQ). The results provide useful information for decision makers to make policies about their citizens and potentially provide recommendations on how to design and develop e-government systems in improving public services.
机译:电子政务(E-GOV)适用于支持绩效并创造更高效和有效的公共服务。 在软组理论中进行分组数据可以被视为确定电子政务使用的成熟度水平的决策技术。 到目前为止,通过调查问卷获得的数据的不确定性并未最大限度地用作政府在确定未来E-GOV发展政策方向方面的适当参考。 本研究介绍了基于软组理论的最大属性相对(MAR),以对属性选项进行分类。 结果表明,利用条件(FC)是影响人们使用电子政务的最高变量,其次是性能预期(PE)和系统质量(SQ)。 结果为决策者提供了有关决策者对其公民进行政策的有用信息,并可能提供有关如何在提高公共服务方面设计和开发电子政务制度的建议。

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