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Betrayed by Motion: Camouflaged Object Discovery via Motion Segmentation

机译:由运动背叛:通过运动分割伪装对象发现

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The objective of this paper is to design a computational architecture that discovers camouflaged objects in videos, specifically by exploiting motion information to perform object segmentation. We make the following three contributions: (ⅰ) We propose a novel architecture that consists of two essential components for breaking camouflage, namely, a differentiable registration module to align consecutive frames based on the background, which effectively emphasises the object boundary in the difference image, and a motion segmentation module with memory that discovers the moving objects, while maintaining the object permanence even when motion is absent at some point, (ⅱ) We collect the first large-scale Moving Camouflaged Animals (MoCA) video dataset, which consists of over 140 clips across a diverse range of animals (67 categories). (ⅲ) We demonstrate the effectiveness of the proposed model on MoCA, and achieve competitive performance on the unsupervised segmentation protocol on DAVIS2016 by only relying on motion.
机译:本文的目的是设计一种通过利用运动信息来执行对象分割来发现视频中的伪装对象的计算架构。我们进行以下三个贡献:(Ⅰ)我们提出了一种新颖的架构,包括两个用于断开伪装的必要组件,即,基于背景对准连续帧的可分辨率的登记模块,从而有效地强调了差异图像中的对象边界以及带有存储器的运动分割模块,即使在某些时候缺少运动,也可以保持移动物体的内存,同时保持对象持久性,(Ⅱ)我们收集第一个大规模移动的伪装动物(MOCA)视频数据集超过140个剪辑横跨各种动物(67个类别)。 (三)我们展示了拟议的Moca模型的有效性,并仅依靠Motion对Davis2016的无监督分段议定书中实现竞争性能。

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