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Towards High Performance Video Object Detection

机译:迈向高性能视频目标检测

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There has been significant progresses for image object detection in recent years. Nevertheless, video object detection has received little attention, although it is more challenging and more important in practical scenarios. Built upon the recent works [37, 36], this work proposes a unified approach based on the principle of multi-frame end-to-end learning of features and cross-frame motion. Our approach extends prior works with three new techniques and steadily pushes forward the performance envelope (speed-accuracy tradeoff), towards high performance video object detection.
机译:近年来,在图像对象检测方面取得了重大进展。然而,尽管在实际情况下更具挑战性和重要性,但视频对象检测却很少受到关注。在最近的工作[37,36]的基础上,这项工作提出了一种基于特征和跨帧运动的多帧端到端学习原理的统一方法。我们的方法采用三种新技术扩展了先前的工作,并稳步推进性能范围(速度精度的权衡),朝着高性能视频对象检测迈进。

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