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Acceptance and use predictors of open data technologies: Drawing upon the unified theory of acceptance and use of technology

机译:开放数据技术的接受度和使用预测指标:基于技术接受和使用的统一理论

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Policy-makers expect that open data will be accepted and used more and more, resulting in a range of benefits including transparency, participation and innovation. The ability to use open data partly depends on the availability of open data technologies. However, the actual use of open data technologies has shown mixed results, and there is a paucity of research on the predictors affecting the acceptance and use of open data technologies. A better understanding of these predictors can help policy-makers to determine which policy instruments they can use to increase the acceptance and use of open data technologies. A modified model based on the Unified Theory of Acceptance and Use of Technology (UTAUT) is used to empirically determine predictors influencing the acceptance and use of open data technologies. The results show that the predictors performance expectancy, effort expectancy, social influence, facilitating conditions and voluntariness of use together account for 45% of the variability in people's behavioral intention to use open data technologies. Except for facilitating conditions, all these predictors significantly influence behavioral intention. Our analysis of the predictors that influence the acceptance and use of open data technologies can be used to stimulate the use of open data technologies. The findings suggest that policy-makers should increase the acceptance and use of open data technologies by showing the benefits of open data use, by creating awareness of users that they already use open data, by developing social strategies to encourage people to stimulate each other to use open data, by integrating open data use in daily activities, and by decreasing the effort necessary to use open data technologies. (C) 2015 Elsevier Inc. All rights reserved.
机译:政策制定者期望开放数据将被越来越多地接受和使用,从而带来一系列好处,包括透明性,参与性和创新性。使用开放数据的能力部分取决于开放数据技术的可用性。但是,开放数据技术的实际使用显示出好坏参半的结果,关于影响开放数据技术的接受和使用的预测变量的研究很少。对这些预测因素的更好理解可以帮助决策者确定他们可以使用哪些政策工具来增加对开放数据技术的接受和使用。基于统一的技术接受和使用理论(UTAUT)的改进模型用于凭经验确定影响开放数据技术接受和使用的预测变量。结果表明,预测指标的绩效期望,预期的工作量,社会影响力,便利条件和使用的自愿性共同构成了人们使用开放数据技术的行为意图变化的45%。除了促进条件外,所有这些预测因素都会显着影响行为意图。我们对影响开放数据技术的接受和使用的预测因素的分析可以用来刺激开放数据技术的使用。调查结果表明,决策者应通过展示开放数据使用的好处,通过使用户意识到他们已经在使用开放数据,通过制定社会策略鼓励人们相互刺激来提高开放数据技术的接受度和使用率。通过在日常活动中整合使用开放数据并减少使用开放数据技术所需的工作来使用开放数据。 (C)2015 Elsevier Inc.保留所有权利。

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