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首页> 外文期刊>Indian Journal of Radiology and Imaging >A peek into the future of radiology using big data applications
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A peek into the future of radiology using big data applications

机译:使用大数据应用窥视放射学的未来

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Big data is extremely large amount of data which is available in the radiology department. Big data is identified by four Vs – Volume, Velocity, Variety, and Veracity. By applying different algorithmic tools and converting raw data to transformed data in such large datasets, there is a possibility of understanding and using radiology data for gaining new knowledge and insights. Big data analytics consists of 6Cs – Connection, Cloud, Cyber, Content, Community, and Customization. The global technological prowess and per-capita capacity to save digital information has roughly doubled every 40 months since the 1980's. By using big data, the planning and implementation of radiological procedures in radiology departments can be given a great boost. Potential applications of big data in the future are scheduling of scans, creating patient-specific personalized scanning protocols, radiologist decision support, emergency reporting, virtual quality assurance for the radiologist, etc. Targeted use of big data applications can be done for images by supporting the analytic process. Screening software tools designed on big data can be used to highlight a region of interest, such as subtle changes in parenchymal density, solitary pulmonary nodule, or focal hepatic lesions, by plotting its multidimensional anatomy. Following this, we can run more complex applications such as three-dimensional multi planar reconstructions (MPR), volumetric rendering (VR), and curved planar reconstruction, which consume higher system resources on targeted data subsets rather than querying the complete cross-sectional imaging dataset. This pre-emptive selection of dataset can substantially reduce the system requirements such as system memory, server load and provide prompt results. However, a word of caution, “big data should not become “dump data” due to inadequate and poor analysis and non-structured improperly stored data. In the near future, big data can ring in the era of personalized and individualized healthcare.
机译:大数据是放射科可获得的极大量数据。大数据由四个V来标识-体积,速度,多样性和准确性。通过应用不同的算法工具并将原始数据转换为如此大的数据集中的转换数据,就有可能理解并使用放射线数据来获得新的知识和见解。大数据分析由6C组成-连接,云,网络,内容,社区和自定义。自1980年代以来,每40个月,全球保存数字信息的技术力量和人均能力几乎翻了一番。通过使用大数据,可以极大地促进放射科放射计划的计划和实施。未来大数据的潜在应用包括扫描计划,创建针对患者的个性化扫描协议,放射线医师的决策支持,紧急情况报告,放射线医师的虚拟质量保证等。通过支持,可以针对图像实现大数据应用的目标用途分析过程。根据大数据设计的筛选软件工具可通过绘制其多维解剖图来突出显示感兴趣的区域,例如实质密度的细微变化,孤立性肺结节或局灶性肝病灶。之后,我们可以运行更复杂的应用程序,例如三维多平面重建(MPR),体积渲染(VR)和弯曲平面重建,这些应用会在目标数据子集中消耗更多的系统资源,而不是查询完整的横截面成像数据集。优先选择数据集可以大大降低系统要求,例如系统内存,服务器负载并提供及时的结果。但是,请注意,由于分析不充分,分析不当以及非结构化的不正确存储的数据,“大数据不应成为”转储数据”。在不久的将来,大数据将在个性化和个性化医疗保健时代响起。

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