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Tree based multi-category Laplacian TWSVM for content based image retrieval

机译:基于树的多类别拉普拉斯TWSVM,用于基于内容的图像检索

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This paper attempts to combine Laplacian Twin Support Vector Machine (Lap-TWSVM) and Decision Tree Twin Support Vector Machine classifier to obtain an effective tree based classifier for semi-supervised multi-category classification. This classifier is termed as Tree Based Multi-Category Laplacian Twin Support Vector Machine (TB-Lap-TWSVM) classifier. TB-Lap-TWSVM is an improved One Against All (OAA) partition based tree classifier which takes advantage of both Lap-TWSVM and Decision Tree methodology. This paper concentrates on the application of TB-Lap-TWSVM to Content Based Image Retrieval problem. Further, extensive experiments on color images are carried out on different databases to establish the efficacy of the proposed model vis a vis TB-Lap-SVM and OAA-Lap-TWSVM.
机译:本文尝试结合拉普拉斯双支持向量机(Lap-TWSVM)和决策树双支持向量机分类器,以获得有效的基于树的分类器,用于半监督多类别分类。该分类器被称为基于树的多类别拉普拉斯双支持向量机(TB-Lap-TWSVM)分类器。 TB-Lap-TWSVM是一种改进的基于所有人的(OAA)分区的树分类器,它同时利用了Lap-TWSVM和决策树方法。本文着重介绍了TB-Lap-TWSVM在基于内容的图像检索问题中的应用。此外,在不同的数据库上进行了彩色图像的广泛实验,以相对于TB-Lap-SVM和OAA-Lap-TWSVM建立所提出模型的有效性。

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