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An Interactive Model for Structural Pattern Recognition based on the Bayes Classifier

机译:基于贝叶斯分类器的结构模式识别的交互式模型

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This paper presents an interactive model for structural pattern recognition based on a naive Bayes classifier. In some applications, the automatically computed correlation between local parts of two images is not good enough. Moreover, humans are very good at locating and mapping local parts of images although any kind of global transformations had been applied to these images. In our model, the user interacts on the automatically obtained correlation (or correspondences between local parts) and helps the system to find the best correspondence while the global transformation parameters are automatically recomputed. The model is based on a Bayes classifier in which the human interaction is properly modelled and embedded in the model. We show that with little human interaction, the quality of the returned correspondences and global transformation parameters drastically increases.
机译:本文介绍了基于天真贝叶斯分类器的结构模式识别的交互式模型。在某些应用中,两个图像的本地部分之间的自动计算相关性并不足够好。此外,人类非常擅长定位和映射局部部分图像,尽管任何类型的全局转换已应用于这些图像。在我们的模型中,用户在自动获得的相关性(或本地部件之间的对应关系)上交互,并帮助系统找到最佳对应关系,而全局转换参数会自动重新计算。该模型基于贝贝分类器,其中人类交互被适当地建模和嵌入模型中。我们表明,随着人的互动少,返回的通信质量和全局转型参数的质量急剧增加。

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