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Characterization of Dental Pathologies using Digital Panoramic X-Ray Images based on Texture Analysis

机译:基于纹理分析的数字全景X射线图像表征牙科病理学

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Dental caries and the cysts of jaws are frequently occurring pathologies encountered in a dental practice. Imaging of these dental anomalies is done with radiographic examination. Panoramic radiography/Orthopantomography (OPG) is a common modality to screen patients with an advantage of ease of imaging and reduced exposure to patients. The panoramic images obtained with this equipment are exploited by noise embedded during its acquisition making the detection of this dental caries difficult. Detection and characterization of dental caries and various other maxilla-facial pathologies can be achieved by the application of computer aided image processing algorithms applied on dental panoramic images. This paper presents two distinct image processing algorithms for detection of dental anomalies. The first part of this paper presents a novel approach for detection of dental caries using hybridized negative transformation. The second part of paper presents, statistical texture analysis for the dental images containing cysts along with dental caries. The texture analysis is used when the objects to be segmented based on texture content rather than intensities. The texture of panoramic image is characterized by Gray Level Co-occurrence Matrix (GLCM). The texture features obtained from the GLCM are energy, entropy, homogeneity, contrast and correlation. These texture features can be used to find texture boundaries to obtain segmentation about the region of cysts. Results obtained by both the methods were satisfactory correlating with the diagnosis made by the maxillofacial radiologists.
机译:龋齿和颌骨囊肿经常发生在牙科实践中遇到的病理学。这些牙科异常的成像通过放射线检查进行。全景造影/矫形术(OPG)是筛选患者的常见态度,其优点是易于成像和降低对患者的暴露。通过该设备获得的全景图像被嵌入期间嵌入的噪声进行了困难的噪声,使得这种龋齿难以检测。通过在牙科全景图像上应用计算机辅助图像处理算法,可以通过应用计算机辅助图像处理算法来实现牙科龋齿和各种其他颌骨面部病理的检测和表征。本文呈现了两个不同的图像处理算法,用于检测牙科异常。本文的第一部分提出了一种使用杂交的负变换检测龋齿的新方法。纸张的第二部分呈现,统计纹理分析含有囊肿和龋齿的牙科图像。基于纹理内容而不是强度分割的对象时使用纹理分析。全景图像的纹理是灰度共发生矩阵(GLCM)的特征。从GLCM获得的纹理特征是能量,熵,均匀性,对比度和相关性。这些纹理特征可用于找到纹理边界,以获得关于囊肿区域的分段。通过这两种方法获得的结果令人满意的与颌面放射学家的诊断相关。

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