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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >A comparison of 3D interest point descriptors with application to airport baggage object detection in complex CT imagery
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A comparison of 3D interest point descriptors with application to airport baggage object detection in complex CT imagery

机译:3D兴趣点描述符的比较及其在复杂CT图像中用于机场行李物体检测的应用

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摘要

We present an experimental comparison of 3D feature descriptors with application to threat detection in Computed Tomography (CT) airport baggage imagery. The detectors range in complexity from a basic local density descriptor, through local region histograms and three-dimensional (3D) extensions to both to the RIFT descriptor and the seminal SIFT feature descriptor. We show that, in the complex CT imagery domain containing a high degree of noise and imaging artefacts, a specific instance object recognition system using simpler descriptors appears to outperform a more complex RIFT/SIFT solution. Recognition rates in excess of 95% are demonstrated with minimal false-positive rates for a set of exemplar 3D objects.
机译:我们介绍了3D特征描述符在计算机断层扫描(CT)机场行李图像中应用于威胁检测的实验比较。检测器的复杂度范围从基本的局部密度描述符到局部直方图和三维(3D)扩展,再到RIFT描述符和精简SIFT特征描述符。我们显示,在包含高度噪声和成像伪像的复杂CT图像域中,使用更简单描述符的特定实例对象识别系统似乎胜过更复杂的RIFT / SIFT解决方案。对于一组示例3D对象,以最低的假阳性率证明了超过95%的识别率。

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