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Exploring Bayesian networks for automated breast cancer detection

机译:探索贝叶斯网络以自动检测乳腺癌

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This paper gives an introduction to the Bayesian networks for the exploration of implementing a Bayesian belief network for an automated breast cancer detection support tool. It is intuitive that Bayesian networks can be employed as one viable option for computer-aided detection by representing the relationships between diagnoses, physical findings, laboratory test results, and imaging study findings. This paper brings important entities such as Radiologists, Image Processing Scientists, Data Base Specialists and Applied Mathematicians on a common platform. A brief background concerning causal networks, probability theory and Bayesian networks is given. Available computational tools and platforms are described. Steps towards building a Bayesian Belief Network Implementation are introduced.
机译:本文介绍了贝叶斯网络,以探索为自动乳腺癌检测支持工具实现贝叶斯信念网络的方法。直观的是,贝叶斯网络可以通过代表诊断,物理结果,实验室测试结果和影像学研究结果之间的关系,作为一种可行的计算机辅助检测方法。本文将重要的实体(例如放射科医生,图像处理科学家,数据库专家和应用数学家)带到一个通用平台上。简要介绍了因果网络,概率论和贝叶斯网络。描述了可用的计算工具和平台。介绍了建立贝叶斯信念网络实现的步骤。

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