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A Cloud Platform for Remote Diagnosis of Breast Cancer in Mammography by Fusion of Machine and Human Intelligence

机译:机器与人类智能融合的乳腺X线摄影术远程诊断云平台

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Mammography is the gold standard for breast cancer screening, reducing mortality by about 30%. The application of a computer-aided detection (CAD) system to assist a single radiologist is important to further improve mammographic sensitivity for breast cancer detection. In this study, a design and realization of the prototype for remote diagnosis system in mammography based on cloud platform were proposed. To build this system, technologies were utilized including medical image information construction, cloud infrastructure and human-machine diagnosis model. Specifically, on one hand, web platform for remote diagnosis was established by J2EE web technology. Moreover, background design was realized through Hadoop open-source framework. On the other hand, storage system was built up with Hadoop distributed file system (HDFS) technology which enables users to easily develop and run on massive data application, and give full play to the advantages of cloud computing which is characterized by high efficiency, scalability and low cost. In addition, the CAD system was realized through MapReduce frame. The diagnosis module in this system implemented the algorithms of fusion of machine and human intelligence. Specifically, we combined results of diagnoses from doctors' experience and traditional CAD by using the man-machine intelligent fusion model based on Alpha-Integration and multi-agent algorithm. Finally, the applications on different levels of this system in the platform were also discussed. This diagnosis system will have great importance for the balanced health resource, lower medical expense and improvement of accuracy of diagnosis in basic medical institutes.
机译:乳房X线照相术是乳腺癌筛查的金标准,可将死亡率降低约30%。应用计算机辅助检测(CAD)系统来协助一位放射线医师对于进一步提高乳腺X线照片对乳腺癌检测的敏感性非常重要。本研究提出了一种基于云平台的乳腺X射线摄影远程诊断系统原型的设计与实现。为了构建该系统,利用了包括医学图像信息构建,云基础设施和人机诊断模型在内的技术。具体而言,一方面,通过J2EE Web技术建立了用于远程诊断的Web平台。此外,通过Hadoop开源框架实现了背景设计。另一方面,存储系统是采用Hadoop分布式文件系统(HDFS)技术构建的,该技术使用户可以轻松地在海量数据应用程序上开发和运行,并充分发挥以高效率,可扩展性为特征的云计算的优势。且价格低廉。另外,CAD系统是通过MapReduce框架实现的。该系统中的诊断模块实现了机器与人类智能融合的算法。具体来说,我们使用基于Alpha-Integration和Multi-Agent算法的人机智能融合模型,结合了医生的经验和传统的CAD诊断结果。最后,还讨论了平台上该系统在不同级别上的应用。该诊断系统对于平衡医疗资源,降低医疗费用,提高基础医疗机构的诊断准确性具有重要意义。

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