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The Statistical Saliency Model Can Choose Colors for Items on Maps

机译:统计显着模型可以选择地图上的物品颜色

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We show how a model of visual salience that was originally developed to explain human visual search performance can suggest display design choices that reduce search time for items. The statistical saliency model proposes that the time to find an item on a visual display depends on the similarity between a target items features and the statistical distribution of display features. In the present study, observers rated the amount of display clutter on a set of MapQuest maps containing colored pushpins. We identified a group of "high-clutter" maps and a group of "low-clutter" maps. Next, we used the statistical saliency model to choose colors for new pushpins placed on those maps. We show that the models color assignments depend on the colors the display contains. Map designs produced using this method were tested in a visual search experiment. Search time decreased as a pushpins predicted salience increased. In addition, choosing low salience colors led to slower search times for items on high-clutter displays than for items on low-clutter displays. The method we describe works with real images and does not require any parameter fitting. This study provides evidence that computational models of visual perception have potential as display design tools.
机译:我们展示了最初开发用于解释人类视觉搜索性能的视觉显着模型可以建议显示减少项目搜索时间的设计选择。统计显着模型提出了在视觉显示上找到项目的时间取决于目标项特征与显示特征的统计分布之间的相似性。在本研究中,观察者在包含彩色图钉的一组MapQuest地图上评分显示杂乱量。我们确定了一组“高杂乱”地图和一组“低杂乱”地图。接下来,我们使用统计显着模型选择放置在这些地图上的新型图钉的颜色。我们表明模型颜色分配取决于显示屏包含的颜色。使用此方法生产的地图设计在视觉搜索实验中进行了测试。随着预测的推动力增加,搜索时间减少。此外,选择低显着的颜色导致高杂波显示器上的物品的搜索时间较慢,而不是低杂波显示器。我们描述的方法使用真实图像,不需要任何参数拟合。本研究提供了证据,即视觉感知的计算模型具有潜在的显示设计工具。

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