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Object Guided External Memory Network for Video Object Detection

机译:用于视频对象检测的对象导向外部存储器网络

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Video object detection is more challenging than image object detection because of the deteriorated frame quality. To enhance the feature representation, state-of-the-art methods propagate temporal information into the deteriorated frame by aligning and aggregating entire feature maps from multiple nearby frames. However, restricted by feature map's low storage-efficiency and vulnerable content-address allocation, long-term temporal information is not fully stressed by these methods. In this work, we propose the first object guided external memory network for online video object detection. Storage-efficiency is handled by object guided hard-attention to selectively store valuable features, and long-term information is protected when stored in an addressable external data matrix. A set of read/write operations are designed to accurately propagate/allocate and delete multi-level memory feature under object guidance. We evaluate our method on the ImageNet VID dataset and achieve state-of-the-art performance as well as good speed-accuracy tradeoff. Furthermore, by visualizing the external memory, we show the detailed object-level reasoning process across frames.
机译:由于帧质量下降,视频对象检测比图像对象检测更具挑战性。为了增强特征表示,最新技术方法是通过对齐和聚合来自多个附近帧的整个特征图,将时间信息传播到恶化的帧中。但是,受特征图的低存储效率和易受攻击的内容地址分配的限制,这些方法不能完全强调长期的时间信息。在这项工作中,我们提出了第一个用于在线视频对象检测的对象导向外部存储器网络。存储效率是由对象指导的辛勤工作来处理的,以有选择地存储有价值的功能,并且当长期信息存储在可寻址的外部数据矩阵中时,可以保护长期信息。一组读/写操作旨在在对象指导下准确地传播/分配和删除多级存储功能。我们在ImageNet VID数据集上评估了我们的方法,并获得了最新的性能以及良好的速度准确性权衡。此外,通过可视化外部存储器,我们展示了跨帧的详细的对象级推理过程。

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