科学DMZ:用于数据密集型科学的网络设计模式

E. Dart, Lauren Rotman, B. Tierney, Mary Hester, J. Zurawski
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引用次数: 203

摘要

不断增长的科学数据规模已经成为依赖网络与远程计算系统交互并将结果传递给全球合作者的研究人员的重大挑战。尽管有高容量连接,但科学家们仍在努力解决网络基础设施不足的问题,这削弱了数据传输性能,阻碍了科学进步。Science DMZ范例包含一组经过验证的网络设计模式,这些模式共同为科学家解决了这些问题。我们解释了Science DMZ模型,包括网络架构、系统配置、网络安全和性能工具,它为科学创建了一个优化的网络环境。我们描述了来自大学、超级计算中心和研究实验室的用例,强调了Science DMZ模型在各种操作设置中的有效性。总之,Science DMZ模型是一个可靠的平台,它支持任何科学工作流程,并灵活地适应新兴的网络技术。因此,科学非军事区极大地改善了协作,加速了科学发现。
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The Science DMZ: A network design pattern for data-intensive science
The ever-increasing scale of scientific data has become a significant challenge for researchers that rely on networks to interact with remote computing systems and transfer results to collaborators worldwide. Despite the availability of high-capacity connections, scientists struggle with inadequate cyberinfrastructure that cripples data transfer performance, and impedes scientific progress. The Science DMZ paradigm comprises a proven set of network design patterns that collectively address these problems for scientists. We explain the Science DMZ model, including network architecture, system configuration, cybersecurity, and performance tools, that creates an optimized network environment for science. We describe use cases from universities, supercomputing centers and research laboratories, highlighting the effectiveness of the Science DMZ model in diverse operational settings. In all, the Science DMZ model is a solid platform that supports any science workflow, and flexibly accommodates emerging network technologies. As a result, the Science DMZ vastly improves collaboration, accelerating scientific discovery.
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