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Well-Being's Predictive Value A Gamified Approach to Managing Smart Communities

机译:幸福感的预测价值一种管理智慧社区的游戏化方法

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摘要

Well-being is a multifaceted concept, having intellectual origins in philosophy, psychology, economics, political science, and other disciplines. Its presence is correlated with a variety of" institutional and business critical indicators. To date, methods to assess well-being are performed infrequently and superficially; resulting in highly aggregated observations. In this paper, we present well-being as a predictive entity for the management of a smart community. Our vision is a low latency method for the observation and measurement of well-being within a community or institution that enables different resolutions of data, e.g. at the level of an individual, a social or demographic group, or an institution. Using well-being in this manner enables realistic, faster and less expensive data collection in a smart system. However, as the data needed for assessing well-being is highly sensitive personal information, constituents require incentives and familiar settings to reveal this information, which we establish with Facebook and gamification. To evaluate the predictive value of well-being, we conducted a series of surveys to observe different self-reported psychological aspects of participants. Our key findings were that neuroticism and extroversion seem to have the highest predictive value of self-reported well-being levels. This information can be used to create expected trends of well-being for smart community management.
机译:幸福是一个多方面的概念,其思想渊源于哲学,心理学,经济学,政治学和其他学科。它的存在与各种各样的“机构和业务关键指标”相关。迄今为止,评估幸福感的方法并不频繁且肤浅;导致高度聚集的观察结果。在本文中,我们将幸福感作为以下方面的预测性实体我们的愿景是一种低延迟的方法,用于观察和衡量社区或机构内的福祉,从而实现不同分辨率的数据解析,例如在个人,社会或人口统计数据层次上,或以这种方式使用幸福感可以在智能系统中收集现实,更快,更便宜的数据,但是,由于评估幸福感所需的数据是高度敏感的个人信息,因此三方成员需要采取激励措施和熟悉的环境来揭示这一点。我们通过Facebook和游戏化建立的信息。为了评估幸福感的预测价值,我们对肥胖者进行了一系列调查为参与者提供不同的自我报告的心理方面。我们的主要发现是,神经质和性格外向似乎对自我报告的幸福水平具有最高的预测价值。此信息可用于为智能社区管理创建幸福感的预期趋势。

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