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Learning analytics and higher education: a proposed model for establishing informed consent mechanisms to promote student privacy and autonomy

机译:学习分析和高等教育:建立知情同意机制以促进学生隐私和自治的建议模型

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By tracking, aggregating, and analyzing student profiles along with students’ digital and analog behaviors captured in information systems, universities are beginning to open the black box of education using learning analytics technologies. However, the increase in and usage of sensitive and personal student data present unique privacy concerns. I argue that privacy-as-control of personal information is autonomy promoting, and that students should be informed about these information flows and to what ends their institution is using them. Informed consent is one mechanism by which to accomplish these goals, but Big Data practices challenge the efficacy of this strategy. To ensure the usefulness of informed consent, I argue for the development of Platform for Privacy Preferences (P3P) technology and assert that privacy dashboards will enable student control and consent mechanisms, while providing an opportunity for institutions to justify their practices according to?existing norms and values.
机译:通过跟踪,汇总和分析学生资料以及信息系统中捕获的学生的数字和模拟行为,大学开始使用学习分析技术来打开教育的黑匣子。但是,敏感和个人学生数据的增加和使用提出了独特的隐私问题。我认为将隐私作为个人信息的控制是在促进自主性,并且应该告知学生这些信息流以及其机构使用它们的目的。知情同意是实现这些目标的一种机制,但是大数据实践挑战了该策略的有效性。为了确保知情同意的有用性,我主张开发“隐私偏好平台”(P3P)技术,并声称隐私仪表板将支持学生控制和同意机制,同时为机构提供一个根据现有规范对其行为进行辩护的机会和价值观。

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