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Perfect Accuracy with Human-in-the-Loop Object Detection

机译:与循环对象检测的完美准确性

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Modern state-of-the-art computer vision systems still perform imperfectly in many benchmark object recognition tasks. This hinders their application to real-time tasks where even a low but non-zero probability of error in analyzing every frame from a camera quickly accumulates to unacceptable performance for end users. Here we consider a visual aid to guide blind or visually-impaired persons in finding items in grocery stores using a head-mounted camera. The system uses a human-in-the-decision-loop approach to instruct the user how to turn or move when an object is detected with low confidence, to improve the object's view captured by the camera, until computer vision confidence is higher than the highest mistaken confidence observed during algorithm training. In experiments with 42 blindfolded participants reaching for 25 different objects randomly arranged on shelves 15 times, our system was able to achieve 100 % accuracy, with all participants selecting the goal object in all trials.
机译:现代最先进的计算机视觉系统在许多基准对象识别任务中仍然不完全执行。这会阻碍其应用于实时任务的应用,其中甚至在从摄像机中分析每个帧时甚至低但非零的概率很快就会累积到最终用户的不可接受性能。在这里,我们考虑使用头戴式摄像头在寻找杂货店中查找物品中的盲人或视力受损人员的视觉辅助。该系统使用人机决策循环方法来指示用户如何在低置信度检测到对象时转动或移动,以改善由相机捕获的对象视图,直到计算机视觉置信度高于在算法培训期间观察到的最高错误信心。在实验中,在42个蒙帘参与者达到25个不同的物体中随机安排在搁板上15次,我们的系统能够实现100%的准确性,所有参与者在所有试验中选择目标对象。

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