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首页> 外文期刊>Journal of Intelligent Manufacturing >Learning pseudo metric for intelligent multimedia data classification and retrieval
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Learning pseudo metric for intelligent multimedia data classification and retrieval

机译:学习伪度量用于智能多媒体数据分类和检索

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摘要

While people compare images using semantic concepts, computers compare images using low-level visual features that sometimes have little to do with these semantics. To reduce the gap between the high-level semantics of visual objects and the low-level features extracted from them, in this paper we develop a framework of learning pseudo metrics (LPM) using neural networks for semantic image classification and retrieval. Performance analysis and comparative studies, by experimenting on an image database, show that the LPM has potential application to multimedia information processing.
机译:人们使用语义概念比较图像时,计算机使用有时与这些语义无关的低级视觉功能来比较图像。为了减少视觉对象的高级语义与从视觉对象中提取的低级特征之间的差距,本文建立了一个使用神经网络对语义图像进行分类和检索的学习伪度量(LPM)的框架。通过对图像数据库进行实验,性能分析和比较研究表明,LPM在多媒体信息处理中具有潜在的应用。

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