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A New Architecture of Feature Pyramid Network for Object Detection

机译:用于对象检测的功能金字塔网络的新架构

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In recent years, object detectors generally use the feature pyramid network (FPN) to solve the problem of scale variation in object detection. In this paper, we propose a new architecture of feature pyramid network which combines a top-down feature pyramid network and a bottom-up feature pyramid network. The main contributions of the proposed method are two-fold: (1) We design a more complex feature pyramid network to get the feature maps for object detection. (2) By combining these two architectures, we can get the feature maps with richer semantic information to solve the problem of scale variation better. The proposed method experiments on PASCAL VOC2007 dataset. Experimental results show that the proposed method can improve the accuracy of detectors using the FPN by about 1.67%.
机译:近年来,对象探测器通常使用特征金字塔网络(FPN)来解决对象检测的规模变化问题。在本文中,我们提出了一种新的特征金字塔网络的架构,它结合了自上而下的功能金字塔网络和自下而上的功能金字塔网络。所提出的方法的主要贡献是两倍:(1)我们设计一个更复杂的功能金字塔网络,以获取用于对象检测的特征映射。 (2)通过组合这两个架构,我们可以获得具有更丰富的语义信息的特征映射来解决比较变化的问题更好。 Pascal VOC2007数据集的提出方法实验。实验结果表明,该方法可以使用FPN提高探测器的准确性约1.67%。

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