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I Am Guessing You Can't Recognize This: Generating Adversarial Images for Object Detection Using Spatial Commonsense (Student Abstract)

机译:我猜你无法识别出这个:使用空间偶数(学生摘要)生成对象检测的对抗图像

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摘要

Can we automatically predict failures of an object detection model on images from a target domain? We characterize errors of a state-of-the-art object detection model on the currently popular smart mobility domain, and find that a large number of errors can be identified using spatial commonsense. We propose CSK-SNIFFER, a system that automatically identifies a large number of such errors based on commonsense knowledge. Our system does not require any new annotations and can still find object detection errors with high accuracy (more than 80% when measured by humans). This work lays the foundation to answer exciting research questions on domain adaptation including the ability to automatically create adversarial datasets for target domain.
机译:我们可以在目标域中自动预测对象检测模型的故障吗? 我们在当前流行的智能移动域中表征了最先进的对象检测模型的错误,并发现可以使用空间致辞来识别大量错误。 我们提出CSK-Sniffer,一种系统,该系统自动识别基于致辞知识的大量此类错误。 我们的系统不需要任何新的注释,并且仍然可以高精度地找到对象检测误差(由人类测量时超过80%)。 这项工作为关于域适应的令人兴奋的研究问题奠定了基础,包括自动为目标域创建对抗性数据集的能力。

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