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A 3D extension to cortex like mechanisms for 3D object class recognition

机译:类似于皮质的机制的3D扩展,用于3D对象类识别

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摘要

We introduce a novel 3D extension to the hierarchical visual cortex model used for prior work in 2D object recognition. Prior work on the use of the visual cortex standard model for the explicit task of object class recognition has solely concentrated on 2D imagery. In this paper we discuss the explicit 3D extension of each layer in this visual cortex model hierarchy for use in object recognition in 3D volumetric imagery. We apply this extended methodology to the automatic detection of a class of threat items in Computed Tomography (CT) security baggage imagery. The CT imagery suffers from poor resolution and a large number of artefacts generated through the presence of metallic objects. In our examination of recognition performance we make a comparison to a codebook approach derived from a 3D SIFT descriptor and demonstrate that the visual cortex method out-performs in this imagery. Recognition rates in excess of 95% with minimal false positive rates are demonstrated in the detection of a range of threat items
机译:我们将新颖的3D扩展引入到用于2D对象识别的先前工作的分层视觉皮质模型中。先前将视觉皮质标准模型用于物体类别识别这一明确任务的工作仅集中在2D图像上。在本文中,我们讨论了此视觉皮层模型层次结构中各层的显式3D扩展,以用于3D体积图像中的对象识别。我们将此扩展方法应用于计算机断层扫描(CT)安全行李图像中的一类威胁项目的自动检测。 CT图像分辨率低,并且由于存在金属物体而产生大量伪像。在我们对识别性能的检查中,我们与从3D SIFT描述符派生的密码本方法进行了比较,并证明了视觉皮层方法在该图像中的性能优于其他方法。在检测一系列威胁项目时证明了超过95%的识别率和极低的假阳性率

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