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Individual teeth segmentation in CBCT and MSCT dental images using watershed

机译:分水岭在CBCT和MSCT牙科图像中的单个牙齿分割

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Teeth segmentation is an important step in human identification and Content Based Image Retrieval (CBIR) systems. This paper proposes a new approach for teeth segmentation using morphological operations and watershed algorithm. In Cone Beam Computer Tomography (CBCT) and Multi Slice Computer Tomography (MSCT) each tooth is an elliptic shape region that cannot be separated only by considering their pixels' intensity values. For segmenting a tooth from the image, some enhancement is necessary. We use morphological operators such as image filling and image opening to enhance the image. In the proposed algorithm, a Maximum Intensity Projection (MIP) mask is used to separate teeth regions from black and bony areas. Then each tooth is separated using the watershed algorithm. Anatomical constraints are used to overcome the over segmentation problem in watershed method. The results show a high accuracy for the proposed algorithm in segmenting teeth. Proposed method decreases time consuming by considering only one image of CBCT and MSCT for segmenting teeth instead of using all slices.
机译:牙齿分割是人类识别和基于内容的图像检索(CBIR)系统中的重要步骤。本文提出了一种使用形态学运算和分水岭算法进行牙齿分割的新方法。在锥束计算机断层摄影(CBCT)和多层计算机断层摄影(MSCT)中,每个牙齿都是一个椭圆形区域,仅通过考虑其像素的强度值就无法将其分开。为了从图像中分割出牙齿,需要一些增强。我们使用诸如图像填充和图像打开等形态运算符来增强图像。在提出的算法中,最大强度投影(MIP)蒙版用于将牙齿区域与黑色和骨骼区域分开。然后使用分水岭算法将每个牙齿分开。分水岭方法通过解剖学约束来克服过度分割问题。结果表明该算法在分割牙齿中具有很高的准确性。提出的方法通过仅考虑CBCT和MSCT的一张图像来分割牙齿而不是使用所有切片来减少时间。

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