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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >A neural network system for matching dental radiographs
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A neural network system for matching dental radiographs

机译:用于匹配牙科X射线照片的神经网络系统

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摘要

This paper addresses the problem of creating a postmortem identification system by matching image features extracted from dental radiographs. We lay the architecture of a prototype automated dental identification system (ADIS), which tackles the dental image matching problem by first extracting high-level features to expedite retrieval of potential matches and then by low-level image comparison using inherent features of dental images. We propose the use of learnable inherent dental image features for tooth-to-tooth image comparisons. We treat the tooth-to-tooth matching problem as a binary classification problem for which we propose probabilistic models of class-conditional densities. We also propose an adaptive strategic searching technique and use it in conjunction with back propagation in order to estimate system. parameters. We present promising experimental results that reflect the value of our approach. (c) 2006 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:本文解决了通过匹配从牙科X射线照片提取的图像特征来创建事后鉴定系统的问题。我们提出了原型自动牙科识别系统(ADIS)的体系结构,该体系通过首先提取高级特征以加快潜在匹配的检索,然后通过使用牙科图像的固有特征进行低级图像比较来解决牙科图像匹配问题。我们建议使用可学习的固有牙齿图像功能进行牙齿图像比较。我们将齿间匹配问题视为二元分类问题,为此我们提出了类条件密度的概率模型。我们还提出了一种自适应策略搜索技术,并将其与反向传播结合使用以估计系统。参数。我们提出了有希望的实验结果,反映了我们方法的价值。 (c)2006模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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