NAO自然界对抗样本数据集
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DESCRIPTIONWe introduce a new dataset, Natural Adversarial Objects (NAO), to evaluate the robustness of object detection models. NAO contains 7,934 images and 9,943 objects that are unmodified and representative of real-world scenarios, but cause state-of-the-art detection models to misclassify with high confidence. The mean average precision (mAP) of EfficientDet-D7 drops 74.5% when evaluated on NAO compared to the standard MSCOCO validation set.PUBLICATIONSNatural Adversarial Objectsinsert_drive_file
### 数据集说明 我们推出了全新数据集**自然对抗目标数据集(Natural Adversarial Objects, NAO)**,用于评估目标检测模型的鲁棒性。该数据集包含7934张图像与9943个未经过修改、具有真实场景代表性的目标,但会使当前前沿的目标检测模型以高置信度发生误分类。与标准MSCOCO验证集相比,EfficientDet-D7在该数据集上的平均精度均值(mean average precision, mAP)下降了74.5%。 ### 相关出版物 Natural Adversarial Objects




