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Hallucination In Object Detection — A Study In Visual Part VERIFICATION

机译:对象检测的幻觉 - 视觉零件验证研究

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We show that object detectors can hallucinate and detect missing objects; potentially even accurately localized at their expected, but non-existing, position. This is particularly problematic for applications that rely on visual part verification: detecting if an object part is present or absent. We show how popular object detectors hallucinate objects in a visual part verification task and introduce the first visual part verification dataset: DelftBikes 1, which has 10,000 bike photographs, with 22 densely annotated parts per image, where some parts may be missing. We explicitly annotated an extra object state label for each part to reflect if a part is missing or intact. We propose to evaluate visual part verification by relying on recall and compare popular object detectors on DelftBikes.1https://github.com/oskyhn/DelftBikes
机译:我们表明对象探测器可以幻觉和检测缺失的物体;甚至可能在预期的预期,但不存在的位置。对于依赖于视觉部件验证的应用尤其有问题:检测对象部分是否存在或不存在。我们展示了流行的对象探测器在视觉零件验证任务中幻觉对象的幻觉对象,并介绍了第一个视觉部件验证数据集:Delftbikes 1 ,拥有10,000张自行车照片,每张图像有22个密集的零件,其中一些部件可能缺失。我们明确注释了每个部件的额外对象状态标签,以反映一部分丢失或完整。我们建议通过依赖于召回并比较Delftbikes上的流行对象探测器来评估视觉零件验证。 1 https://github.com/oskyhn/delftbikes.

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