解决社交媒体中的自我表露:一种教学意识方法

N. E. D. Ferreyra, Johanna Schäwel, M. Heisel, Christian Meske
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引用次数: 5

摘要

如今,在Facebook等不同的社交网站(sns)上流动的信息是高度多样化和内容丰富的。正是用户对sns的贡献的多样性使得这些平台具有吸引力和趣味性。然而,为了充分利用这些网站提供的服务,这些用户会永久披露大量的私人和敏感信息。当前的隐私保护方法(如Facebook提供的方法)允许用户限制他们的贡献的受众,并隐藏特定的信息片段;然而,它们还远远没有被广泛采用和积极付诸实践。出于这个原因,我们建议从教学和自我适应的角度来分析和解决社交媒体中在线自我披露的不同方面。在这项工作中,我们介绍了基于自主系统MAPE-K蓝图的教学意识系统(IAS)的架构,并使用基于约束的建模(CBM)原则定义了其反馈机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Addressing self-disclosure in social media: An instructional awareness approach
Nowadays the information flowing across the different Social Network Sites (SNSs) like Facebook is highly diverse and rich in its content. It is precisely the diversity of the users' contributions to SNSs that makes these platforms attractive and interesting to engage with. Nevertheless, there is a high amount of private and sensitive information being disclosed permanently by these users in order to take full advantage of the services offered by such sites. Current privacy-protection approaches (like the one provided by Facebook) allow users to restrict the audience of their contributions and hide particular pieces of information; however, they are still far from being widely adopted and put proactively into practice. For this reason, we propose to analyze and address different aspects of online self-disclosure in Social Media from a pedagogical and self-adaptive perspective. In this work we introduce the architecture of an Instructional Awareness System (IAS) based on the MAPE-K blueprint for autonomic systems, and provide a definition of its feedback mechanism using principles of Constraint-Based Modeling (CBM).
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