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Information embedding based on user's relevance feedback for image retrieval

机译:基于用户相关反馈的信息嵌入用于图像检索

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Abstract: An image retrieval system based on an information embedding scheme is proposed. Using relevance feedback, the system gradually embeds correlations between images from a high- level semantic perspective. The system starts with low-level image features and acquires knowledge from users to correlate different images in the database. Through the selection of positive and negative examples based on a given query, the semantic relationships between images are captured and embedded into the system by splitting/merging image clusters and updating the correlation matrix. Image retrieval is then based on the resulting image clusters and the correlation matrix obtained through relevance feedback. !10
机译:摘要:提出了一种基于信息嵌入方案的图像检索系统。使用相关性反馈,系统从高级语义的角度逐渐将图像之间的相关性嵌入。该系统从低级图像功能开始,并从用户那里获取知识以关联数据库中的不同图像。通过基于给定查询选择正例和负例,通过拆分/合并图像簇并更新相关矩阵,捕获图像之间的语义关系并将其嵌入系统中。然后基于所得图像簇和通过相关性反馈获得的相关矩阵进行图像检索。 !10

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