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Fast Video Object Segmentation by Reference-Guided Mask Propagation

机译:通过参考引导的遮罩传播进行快速视频对象分割

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We present an efficient method for the semi-supervised video object segmentation. Our method achieves accuracy competitive with state-of-the-art methods while running in a fraction of time compared to others. To this end, we propose a deep Siamese encoder-decoder network that is designed to take advantage of mask propagation and object detection while avoiding the weaknesses of both approaches. Our network, learned through a two-stage training process that exploits both synthetic and real data, works robustly without any online learning or post-processing. We validate our method on four benchmark sets that cover single and multiple object segmentation. On all the benchmark sets, our method shows comparable accuracy while having the order of magnitude faster runtime. We also provide extensive ablation and add-on studies to analyze and evaluate our framework.
机译:我们提出了一种半监督视频对象分割的有效方法。与其他方法相比,我们的方法运行时间短,因此与最新方法相比具有更高的精度。为此,我们提出了一种深层的暹罗编码器/解码器网络,该网络旨在利用掩码传播和对象检测的优势,同时避免两种方法的缺点。我们的网络是通过两阶段的培训过程学习的,该过程利用合成数据和真实数据,无需任何在线学习或后处理即可稳定运行。我们在涵盖单个和多个对象细分的四个基准集上验证我们的方法。在所有基准测试集上,我们的方法显示出可比的准确性,同时具有更快的运行时间数量级。我们还提供广泛的消融和附加研究,以分析和评估我们的框架。

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