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A Novel Small Vehicle Detection Method Based on UAV Using Scale Adaptive Gradient Adjustment

机译:一种基于UAV的新型小型车辆检测方法,使用比例自适应梯度调整

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Vehicle detection based on UAV video is a typical small object detection task. In recent years, multi-scale prediction framework has become one of key steps for small object detection. However, the performances of existing methods are still not satisfactory for small object detection. In this paper, inspired by that the scale of object has an impact on gradient descent in the deep learning process, we choose the intersection over union (IOU) as the evaluation metric to analyze the relationship between scale of objects and gradient. We have shown that the gradient adjustment methods should satisfy some rules and thus we propose a new gradient adjustment formula based on our analysis. In addition, we built a mixed small vehicle dataset based on UAV videos for better evaluation of small vehicle detection. In the comparison with existing methods, our proposed method has achieved better results. The performance of our method reveals the potential of scale adaptive gradient descent method.
机译:基于UAV视频的车辆检测是典型的小对象检测任务。近年来,多尺度预测框架已成为小物体检测的关键步骤之一。但是,对于小物体检测,现有方法的性能仍然不令人满意。在本文中,通过对象的规模对深度学习过程中的梯度下降产生影响,我们选择了联盟(iou)作为评估度量来分析物体和梯度比例之间的关系。我们已经表明,梯度调整方法应满足一些规则,从而提出了一种基于我们分析的新梯度调整配方。此外,我们基于UAV视频建立了一个混合的小型车辆数据集,以便更好地评估小型车辆检测。在与现有方法的比较中,我们提出的方法取得了更好的结果。我们的方法的性能揭示了规模自适应梯度下降方法的潜力。

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