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A biomedical image retrieval framework based on classification-driven image filtering and similarity fusion

机译:基于分类驱动图像过滤和相似度融合的生物医学图像检索框架

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This paper presents a classification-driven biomedical image retrieval approach based on multi-class support vector machine (SVM) and uses image filtering and similarity fusion. In this framework, the probabilistic outputs of the SVM are exploited to reduce the search space for similarity matching. In addition, the predicted category of the query image is used for linear combination of similarity. The method is evaluated on a diverse collection of 5000 biomedical images of different modalities, body parts, and orientations and shows a halving in computation time (efficiency) and 10% to 15% improvement in precision at each recall level (effectiveness).
机译:本文提出了一种基于分类支持向量机(SVM)的分类驱动生物医学图像检索方法,并利用图像滤波和相似度融合。在此框架中,利用SVM的概率输出来减少相似性匹配的搜索空间。另外,查询图像的预测类别用于相似度的线性组合。该方法在5000种不同形态,身体部位和方向的生物医学图像的多样化集合上进行了评估,结果表明在每个召回级别(有效性),计算时间(效率)降低了一半,而精度提高了10%到15%。

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