基于细胞相似度的人脸识别快速SURF方法

Song Cao
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引用次数: 4

摘要

人脸识别是计算机视觉中一个非常具有挑战性的问题。本文进一步研究了一种尺度和旋转不变的兴趣点描述子——加速鲁棒特征(SURF)在人脸识别中的应用。在此基础上,提出了一种新的方法——细胞相似度(Cell Similarity)。同时,本文提出并评价了不同的细胞分裂策略,旨在揭示人脸识别的内在联系和本质。我们不仅在ORL数据集和我们的Lab数据集(对齐的人脸)上获得了很好的结果,而且通过减少匹配时间来加快原始版本的速度。此外,为了进一步处理旋转情况,在这两个数据集上评估了另一种新的环形细胞相似度方法,并讨论了不同实现方法的优缺点。
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A fast SURF way for human face recognition with Cell Similarity
Face recognition is a very challenging problem in computer vision. In this paper, Speeded up Robust Features (SURF), a scale and rotation invariant interesting point descriptor, is further explored for face recognition. Specially, a novel technique, Cell Similarity is proposed to make improvement based on SURF in face recognition. In the meantime, different cell division strategies are proposed and evaluated in this paper, which move towards revealing the inner relation and essence in face recognition. We not only obtain good results in ORL dataset and our Lab dataset (aligned face), but also speed up the original version by reducing matching time. Moreover, in order to further deal with rotation situation, another new loopy Cell Similarity method in these two datasets is evaluated, and advantages and disadvantages of different implementations are also discussed.
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