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Instance search via instance level segmentation and feature representation

机译:实例通过实例级别分段和特征表示搜索

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摘要

Instance search is an interesting task as well as a challenging issue due to the lack of effective feature representation. In this paper, an instance level feature representation built upon fully convolutional instanceaware segmentation is proposed. The feature is ROI-pooled from the segmented instance region. So that instances in various sizes and layouts are represented by deep features in uniform length. This representation is further enhanced by the use of deformable ResNeXt blocks. Superior performance is observed in terms of its distinctiveness and scalability on a challenging evaluation dataset built by ourselves. In addition, the proposed enhancement on the network structure also shows superior performance on the instance segmentation task.
机译:实例搜索是一个有趣的任务以及由于缺乏有效特征表示而有挑战性的问题。 在本文中,提出了一种在完全卷积的InstanceAware分段上构建的实例级别特征表示。 该功能是从分段实例区域池的ROI汇总。 因此,各种尺寸和布局的实例由均匀长度的深度特征表示。 通过使用可变形的reNext块进一步增强了该表示。 就自己的挑战性评估数据集而言,在其独特性和可扩展性方面观察到卓越的性能。 此外,拟议的网络结构增强还在实例分段任务上显示出卓越的性能。

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