发明名称 OPTIMIZING MULTI-CLASS IMAGE CLASSIFICATION USING PATCH FEATURES
摘要 Optimizing multi-class image classification by leveraging patch-based features extracted from weakly supervised images to train classifiers is described. A corpus of images associated with a set of labels may be received. One or more patches may be extracted from individual images in the corpus. Patch-based features may be extracted from the one or more patches and patch representations may be extracted from individual patches of the one or more patches. The patches may be arranged into clusters based at least in part on the patch-based features. At least some of the individual patches may be removed from individual clusters based at least in part on determined similarity values that are representative of similarity between the individual patches. The system may train classifiers based in part on patch-based features extracted from patches in the refined clusters. The classifiers may be used to accurately and efficiently classify new images.
申请公布号 WO2016118286(A1) 申请公布日期 2016.07.28
申请号 WO2015US67554 申请日期 2015.12.28
申请人 MICROSOFT TECHNOLOGY LICENSING, LLC 发明人 MISRA, ISHAN;LI, JIN;HUA, XIAN-SHENG
分类号 G06K9/62 主分类号 G06K9/62
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