Publication | Closed Access
A New Feature Pyramid Network for Object Detection
57
Citations
14
References
2019
Year
Unknown Venue
Convolutional Neural NetworkMachine VisionFeature DetectionImage AnalysisMachine LearningPattern RecognitionObject DetectionObject RecognitionData ScienceFeature Pyramid NetworkObject DetectorFeature LearningComputer SciencePascal Voc 2007EngineeringDeep LearningVideo TransformerComputer Vision
Aiming at the problems of high computational cost based on deep backbones (e.g., ResNet-50, ResNet-101, DenseNet-169) in the state-of-the-art method about object detector, this paper improves the capability of feature representations by using New Feature Pyramid module on the basis of fast lightweight backbone network (vgg-16), and finally establishes a fast and accurate detector. The architecture of our model is named New FPN (New Feature Pyramid Network). Based on the structure of Feature Pyramid Network, we design a novel New Feature Pyramid Network, which consists of a combination of top-down and bottom-up connections to fuse features across scales, and achieves high-level semantic feature map at all scales. The experimental results show that New FPN achieves state-of-the-art detection accuracy (i.e. 79.2%mAP) on PASCAL VOC 2007 with high efficiency (i.e. 73FPS).
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