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Siamese Network Based Pelage Pattern Matching for Ringed Seal Re-identification

机译:基于连体网络的图案匹配用于环形密封件重新识别

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In this paper we propose a method to match pelage patterns of the Saimaa ringed seals enabling the re-identification of individuals. First, the pelage pattern is extracted from the seal’s fur using a method based on the Sato tubeness filter. After this, the similarities of the pelage pattern patches are computed using a siamese network trained with a triplet loss function and a large dataset of manually selected patches. The similarities are then used to find the best matching patches from the images in the database of known individuals. Furthermore, we employ the proposed pattern matching method to build a full framework for the ringed seal re-identification, consisting of CNN-based animal segmentation, patch correspondence detection, and ranking the images in the database of known seal individuals based on the similarity to the query image. Our experiments on challenging datasets of Saimaa ringed seals show that the proposed method achieves promising identification results, providing a useful tool for the Saimaa ringed seal monitoring.
机译:在本文中,我们提出了一种方法来匹配Saimaa环斑海豹的象牙图案,从而可以重新识别个人。首先,使用基于Sato管状过滤器的方法从海豹的皮毛中提取毛皮图案。此后,使用训练有三重态损失函数的暹罗网络和手动选择的斑块的大型数据集,计算出样片斑块的相似度。然后使用相似性从已知个体的数据库中的图像中找到最佳匹配的色块。此外,我们采用拟议的模式匹配方法为环形海豹重新识别建立完整的框架,包括基于CNN的动物分割,斑块对应检测以及基于与海豹的相似性对已知海豹个体数据库中的图像进行排名。查询图片。我们对赛马环斑海豹具有挑战性的数据集进行的实验表明,该方法取得了有希望的识别结果,为赛马环斑海豹的监测提供了有用的工具。

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