Understanding users in the wild

Aitor Apaolaza, S. Harper, C. Jay
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引用次数: 35

Abstract

Laboratory studies are a well established practice that present disadvantages in terms of data collection. One of these disadvantages is that laboratories are controlled environments that do not account for unpredicted factors from the real world. Laboratory studies are also obtrusive and therefore possibly biased. The Human-Computer Interaction (HCI) community has acknowledged these problems and has started exploring in-situ observation techniques. These observation techniques allow for bigger participant pools and their environments can conform to the real world. Such real-world observations are particularly important to the accessibility community who has coined the concept accessibility-in-use to differentiate real world from laboratory studies. Real-world observations provide low-level interaction data therefore making a bottom-up analysis possible. This way behaviours emerge from the obtained data instead of looking for predefined models. Some in-situ techniques employ Web logs in which the data is too coarse to infer meaningful user interaction. In some other cases an exhaustive manual modification is required to capture interaction data from a Web application. We describe a tool which is easily deployable in any Web application and captures longitudinal interaction data unobtrusively. It enables the observation of accessibility-in-use and guides the detection of emerging tasks.
了解野外的用户
实验室研究是一种成熟的做法,但在数据收集方面存在缺点。其中一个缺点是,实验室是受控的环境,不能解释来自现实世界的不可预测因素。实验室研究也很突兀,因此可能有偏见。人机交互(HCI)社区已经认识到这些问题,并开始探索原位观测技术。这些观察技术允许更大的参与者池,他们的环境可以符合现实世界。这种真实世界的观察对无障碍社区来说尤其重要,他们创造了“使用中的无障碍”这个概念,以区分真实世界和实验室研究。真实世界的观察提供了低级别的相互作用数据,因此使自下而上的分析成为可能。通过这种方式,行为从获得的数据中产生,而不是寻找预定义的模型。一些原位技术使用Web日志,其中的数据过于粗糙,无法推断有意义的用户交互。在其他一些情况下,需要彻底的手工修改才能从Web应用程序捕获交互数据。我们描述了一种工具,它可以很容易地部署到任何Web应用程序中,并且可以不显眼地捕获纵向交互数据。它可以观察使用中的可访问性,并指导检测新出现的任务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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