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Arbitrary-Oriented Dense Object Detection in Remote Sensing Imagery

机译:遥感影像中面向任意方向的密集物体检测

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Automatic object detection in remote sensing images is of significant importance with widespread practical applications. However, complex backgrounds, small size and dense arrangement of objects, as well as the various orientations of the target pose great challenges for current object detection algorithms. In this paper, an arbitrary-oriented dense object detection network is proposed to predict the object area using oriented bounding boxes. Firstly, we present a method to predict the object angle according to the features in the proposal, which does not increase computation costs by utilizing weight sharing. Then, a bound conversion algorithm is built to generate the oriented bounding box of an object according to the result of axis-aligned horizontal box and predicted angle information. In addition, we employ a two-stage NMS algorithm to reduce the omission ratio for dense objects by introducing oriented boxes to compute overlapping ratio. Detailed evaluations on the DOTA dataset demonstrate the effectiveness of the proposed method.
机译:在广泛的实际应用中,遥感图像中的自动目标检测非常重要。然而,复杂的背景,物体的小尺寸和密集的布置以及目标的不同方向对当前的物体检测算法提出了巨大的挑战。本文提出了一种面向任意方向的密集物体检测网络,利用定向包围盒对目标区域进行预测。首先,我们提出了一种根据提议中的特征预测物镜角度的方法,该方法不会通过利用权重共享而增加计算成本。然后,建立边界转换算法,根据轴对齐水平框的结果和预测角度信息生成对象的定向边界框。此外,我们采用了两阶段NMS算法,通过引入定向框来计算重叠率,从而降低了稠密物体的遗漏率。对DOTA数据集的详细评估证明了该方法的有效性。

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