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Seeing Signs of Danger: Attention-Accelerated Hazmat Label Detection

机译:看到危险迹象:注意加速危险品标签检测

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Rescue robots and similar vehicles must recognize various visual objects. Some are of particular interest and must be reliably recognized, for example, hazard signs. Hazmat labels and other intentionally placed signs of danger are typically attached to walls, containers, or vehicles, in locations where they attract attention. These backgrounds typically are of relatively simple structure (though not guaranteed to be plain) while the labels have saturated colors and high contrasts. We provide a new dataset that contains such images and a novel hazmat detection method. It includes an attentional preselection, which exploits the salient design and placement of the labels to locate them, followed by a SIFT-based classification that determines the concrete label type. The results show substantial speed improvements and accuracy gains over the traditional method without an attention stage.
机译:救援机器人和类似车辆必须识别各种视觉对象。有些是特别重要的,必须可靠地加以识别,例如,危险标志。危险品标签和其他故意放置的危险标志通常会贴在墙壁,容器或车辆上引起注意的位置。这些背景通常具有相对简单的结构(尽管不能保证是平整的),而标签则具有饱和的颜色和高对比度。我们提供了一个包含此类图像的新数据集和一种新颖的危险品检测方法。它包括一个注意性的预选,该预选利用标签的显着设计和位置来定位它们,然后进行基于SIFT的分类,以确定具体的标签类型。结果表明,与传统方法相比,无需注意阶段即可显着提高速度并提高准确性。

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