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Semi-Automatic Detection of Cervical Vertebrae in X-ray Images Using Generalized Hough Transform

机译:广义霍夫变换的X射线图像中颈椎的半自动检测

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Vertebra detection presents the first step of any automatic spinal column diagnosis. This task becomes more difficult in the case of the cervical X-ray images characterized by their low contrasts and noise due to skull bones. In this paper, we describe an efficient modified template matching method for detecting cervical vertebrae using Generalized Hough Transform (GHT). The proposed method consists of three main steps toward vertebrae detection: 1) Offline training to obtain a robust average model of cervical vertebra. 2) Detecting the potential vertebra tenters. 3) Adaptive Post-processing filter. X-ray Image data of 40 healthy cases were used to validate our approach by using a total of 200 cervical vertebrae. We obtained an accuracy of 89%.
机译:椎骨检测介绍了任何自动脊柱诊断的第一步。 在颈椎X射线图像的情况下,该任务变得更加困难,其特征在于由于颅骨骨骼的低对比度和噪声。 在本文中,我们使用广义霍夫变换(GHT)描述了一种用于检测颈椎的有效修饰的模板匹配方法。 该方法由三个主要步骤组成椎骨检测:1)离线培训,以获得颈椎的稳健平均模型。 2)检测潜在的椎骨追随者。 3)自适应后处理过滤器。 通过使用总共200个宫颈椎骨,使用40例健康病例的X射线图像数据来验证我们的方法。 我们获得了89%的准确性。

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