首页> 外文会议>International Conference on Medical Biometrics(ICMB 2008); 20080104-05; Hong Kong(CN) >A Knowledge Discovery Approach to Diagnosing Intracranial Hematomas on Brain CT: Recognition, Measurement and Classification
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A Knowledge Discovery Approach to Diagnosing Intracranial Hematomas on Brain CT: Recognition, Measurement and Classification

机译:诊断脑CT颅内血肿的知识发现方法:识别,测量和分类

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Computed tomography (CT) of the brain is preferred study on neurological emergencies. Physicians use CT to diagnose various types of intracranial hematomas, including epidural, subdural and intracerebral hematomas according to their locations and shapes. We propose a novel method that can automatically diagnose intracranial hematomas by combining machine vision and knowledge discovery techniques. The skull on the CT slice is located and the depth of each intracranial pixel is labeled. After normalization of the pixel intensities by their depth, the hyperdense area of intracranial hematoma is segmented with multi-resolution thresholding and region-growing. We then apply C4.5 algorithm to construct a decision tree using the features of the segmented hematoma and the diagnoses made by physicians. The algorithm was evaluated on 48 pathological images treated in a single institute. The two discovered rules closely resemble those used by human experts, and are able to make correct diagnoses in all cases.
机译:脑部计算机断层扫描(CT)是神经系统紧急情况的首选研究。医师使用CT根据其位置和形状诊断各种类型的颅内血肿,包括硬膜外,硬膜下和脑内血肿。我们提出了一种可以结合机器视觉和知识发现技术自动诊断颅内血肿的新方法。找到CT切片上的颅骨,并标记每个颅内像素的深度。通过像素强度的深度归一化后,颅内血肿的高密度区域通过多分辨率阈值分割和区域增长进行分割。然后,我们使用分段血肿的特征和医生的诊断结果,应用C4.5算法构建决策树。在单个机构中处理的48幅病理图像上评估了该算法。这两个发现的规则与人类专家使用的规则非常相似,并且能够在所有情况下做出正确的诊断。

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