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Semi-automatic Aggregation of Multiple Models of Visual Attention for Model-Based User Interface Evaluation

机译:基于模型的用户界面评估的视觉注意的多个模型的半自动聚合

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Predicting the distribution of attention to new user interface designs can provide valuable information during the design process, but accurate predictions are difficult to achieve. Recent studies have shown that accuracy can be increased based on the Diversity Prediction Theorem if multiple, independently developed models for the prediction of attention distribution are aggregated. However, aggregating multiple models is a manual task, that takes a lot of effort because a large number of information sources, which are defined as parts of each model, need to be compared among each other. In this work we test two different clustering approaches for automatically aggregating such models. We show that the clustering quality is not sufficient for fully automatic clustering and present a software-supported solution for a semi-automatic clustering process.
机译:预测对新用户界面设计的关注程度分布可以在设计过程中提供有价值的信息,但是很难实现准确的预测。最近的研究表明,如果集合了多个独立开发的注意力分布预测模型,则可以基于多样性预测定理提高准确性。但是,聚合多个模型是一项手动任务,因为需要将彼此定义的大量信息源(定义为每个模型的一部分)进行比较,因此需要付出很多努力。在这项工作中,我们测试了两种不同的聚类方法来自动聚合此类模型。我们表明,集群质量不足以实现全自动集群,并提出了针对半自动集群过程的软件支持的解决方案。

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