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Persistent Betti Numbers for a Noise Tolerant Shape-Based Approach to Image Retrieval

机译:基于噪声的基于形状的图像检索方法中的持久性贝蒂数

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In content-based image retrieval a major problem is the presence of noisy shapes. It is well known that persistent Betti numbers are a shape descriptor that admits a dissimilarity distance, the matching distance, stable under continuous shape deformations. In this paper we focus on the problem of dealing with noise that changes the topology of the studied objects. We present a general method to turn persistent Betti numbers into stable descriptors also in the presence of topological changes. Retrieval tests on the Kimia-99 database show the effectiveness of the method.
机译:在基于内容的图像检索中,主要的问题是噪声形状的存在。众所周知,持久的贝蒂数是一个形状描述符,它允许相异距离(匹配距离)在连续形状变形下保持稳定。在本文中,我们关注于处理会改变被研究对象的拓扑结构的噪声的问题。我们提出了一种在存在拓扑变化的情况下也将持久Betti数转换为稳定描述符的通用方法。对Kimia-99数据库的检索测试表明了该方法的有效性。

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