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ICLIC: Interactive categorization of large image collections

机译:iclic:大图像集合的交互式分类

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We present a new approach for the analysis of large image collections. We argue that categorization plays an important role in this process, not only to label images as end result, but also during exploration. Furthermore, to increase the effectiveness and efficiency of the categorization process we enable the use of all available metadata, treated as multivariate data. We identified images, attributes, and categories as important aspects and integrated these in a system called ICLIC. The system consists of four views that are connected by the selection of images, which is a central action in the approach. By using a minimalist interface with only standard metaphors, users are enabled to use the system in short time. The system enables complex queries in a natural way, and it can deal with collections containing more than 100,000 images and more than 1,000 metadata attributes. This was confirmed by two evaluation cycles with domain experts.
机译:我们提出了一种分析大型图像集合的新方法。我们认为,分类在这个过程中扮演一个重要的角色,不仅要将图像标记为最终结果,而且在探索期间也是如此。此外,为了提高分类过程的有效性和效率,我们可以使用所有可用的元数据,视为多变量数据。我们将图像,属性和类别标识为重要方面,并在名为ICLIC的系统中集成这些。该系统由四个视图组成,该视图通过选择图像连接,这是方法中的核心动作。通过使用仅具有标准隐喻的最低次界面,用户将在短时间内使用该系统。该系统以自然方式启用复杂的查询,可以处理包含超过100,000个图像和超过1,000个元数据属性的集合。这是通过两个评价周期与域专家确认。

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