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Review of the ASDEX Upgrade data acquisition environment-present operation and future requirements

机译:审查ASDEX升级数据采集环境-当前的操作和将来的要求

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The data acquisition environment of the ASDEX Upgrade fusion experiment was designed in the late 1980s to handle a predicted quantity of 8 Mbytes of data per discharge. After 7 years of operation a review of the whole data acquisition and analysis environment shows what remains of the original design ideas. Comparing the original 15 diagnostics with the present set of 250 diagnostic datasets generated per shot shows how the system has grown. Although now a vast accumulation of functional parts, the system still works in a stable manner and is maintainable. The underlying concepts affirming these qualities are modularity and compatibility. Modularity ensures that most parts of the system can be modified without affecting others. Standards for data structures and interfaces between components and methods are the prerequisites which make modularity work. The experience of the last few years shows that, besides the standards achieved, new, mainly real-time, features are needed: real-time event recognition allowing reaction to complex changing conditions; real-time wavelet analysis allowing adapted sampling rates; real-time data exchange between diagnostics and control; real-time networks allowing flexible computer coupling to permit interplay between different components; object-oriented programming concepts and databases are required for readily adaptable software modules. A final assessment of our present data processing situation and future requirements shows that modern information technology methods have to be applied more intensively to provide the most flexible means to
机译:ASDEX升级融合实验的数据采集环境是在1980年代后期设计的,每次放电处理的预计数据量为8 MB。经过7年的运作,对整个数据采集和分析环境的审查显示了原始设计思想的剩余内容。将原始的15个诊断与每个镜头生成的250个诊断数据集的当前集合进行比较,可以看出系统的发展情况。尽管现在功能部件的堆积很大,但该系统仍以稳定的方式工作且可维护。确认这些质量的基本概念是模块化和兼容性。模块化确保可以修改系统的大部分而不影响其他部分。数据结构以及组件和方法之间的接口的标准是使模块化工作的前提。过去几年的经验表明,除了已达到的标准外,还需要新的,主要是实时的功能:实时事件识别,可以对复杂的变化条件做出反应;实时小波分析,可以调整采样率;诊断和控制之间的实时数据交换;实时网络,允许灵活的计算机耦合,以允许不同组件之间的相互作用;易于适应的软件模块需要面向对象的编程概念和数据库。对我们目前的数据处理情况和未来要求的最终评估表明,必须更加密集地应用现代信息技术方法,以提供最灵活的方法来

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