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An affine point-set and line invariant algorithm for photo-identification of gray whales

机译:灰色鲸鱼照片识别的仿射点集和线不变算法

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This paper presents an affine point-set and line invariant algorithm within a statistical framework, and its application to photo-identification of gray whales (Eschrichtius robustus). White patches (blotches) appearing on a gray whale's left and right flukes (the flattened broad paddle-like tail) constitute unique identifying features and have been used here for individual identification. The fluke area is extracted from a fluke image via the live-wire edge detection algorithm, followed by optimal thresholding of the fluke area to obtain the blotches. Affine point-set and line invariants of the blotch points are extracted based on three reference points, namely the left and right tips and the middle notch-like point on the fluke. A set of statistics is derived from the invariant values and used as the feature vector representing a database image. The database images are then ranked depending on the degree of similarity between a query and database feature vectors. The results show that the use of this algorithm leads to a reduction in the amount of manual search that is normally done by marine biologists.
机译:本文提出一种仿射点集和线不变算法统计框架内,并且其对灰鲸的照片识别应用(Eschrichtius粗壮)。白斑(斑点)出现在一个灰鲸的左右吸虫(扁平宽桨状尾巴)构成独特识别特征,并已在这里用于个体识别。锚钩区域从经由实时线边缘检测算法侥幸图像提取,随后用吸虫区域以获得斑点的最佳阈值。该斑点的仿射点集并线不变量是基于三个参考点,即左侧和右侧的提示和中间切口状的侥幸点提取。一组统计从不变值导出,并作为表示数据库图像的特征向量。然后,数据库图像取决于相似性的查询和数据库特征矢量之间的相似度排序。结果表明,使用这种算法导致的,以在通常由海洋生物学家进行手动搜索量的减少。

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