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Photoexcitation of Complex Molecular Systems through Combined FirstPrinciples...
全球变化科学紫荆论坛第439期:基于850hPa相对涡度的热带气旋路径追踪识别方法
Controlling the Structure of Inference and Learning in Neural Networks
环境学术沙龙第698期:城市水系统综合管理:关键铁盐化学品的生产与利用
报告题目:
Scalable Solvers for Computational Plasma Physics in the SciDAC Program
 报告人:
David E. Keyes
Professor of at Columbia University
报告时间:
2006-05-12 10:00
报告地点:
高研中心地下报告厅
主办单位:
工物系
  简介:

The "Scientific Discovery through Advanced Computing" (SciDAC) initiative is a set of interconnected projects --- science, software development, and research to directed toward the latter --- designed to support simulation, data exploration, and collaboration in many thrust areas of the U.S. Department of Energy, including: climate modeling, fusion energy, chemistry and materials science, astrophysics, and high energy and particle physics.

Optimal complexity solution algorithms, such as multigrid/multilevel preconditio-

ners, keep the time spent in dominant algebraic kernels close to linear as the applications scale on parallel computers. Krylov accelerators and Jacobian-free variants of Newton's method are wrapped outside to deliver robustness in multirate, multiscale coupled systems, which are solved implicitly.

We illustrate with a range of applications in magnetically confined fusion energy, as the fusion community gears up for participation in the International Thermonuclear Experimental Reactor (ITER) consortium.    

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