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Semantic image retrieval based on POCS algorithm using kernel PCA and its performance verification

机译:基于POCS算法的核PCA语义图像检索及其性能验证。

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This paper presents a projection onto convex sets (POCS)-based semantic image retrieval method and its performance verification. The main contributions of the proposed method are twofold: introduction of nonlinear eigenspace of visual and semantic features into the constraint of the POCS-based semantic image retrieval algorithm and adaptive selection of the annotated images utilized for this algorithm. Then, by combining these two approaches, the semantic features of the query image are successfully estimated, and accurate image retrieval can be expected. Finally, relationship between the performance of the proposed method and the kinds of the kernel functions utilized for the kernel PCA is shown in this paper.
机译:本文提出了一种基于凸集(POCS)的语义图像检索方法及其性能验证。该方法的主要贡献有两个方面:将视觉和语义特征的非线性特征空间引入基于POCS的语义图像检索算法的约束中,以及自适应选择用于该算法的带注释图像。然后,通过结合这两种方法,可以成功地估计查询图像的语义特征,并可以期望准确的图像检索。最后,本文给出了所提方法的性能与用于内核PCA的内核功能种类之间的关系。

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