English

UNEDF: Advanced Scientific Computing Collaboration Transforms the Low-Energy Nuclear Many-Body Problem

Nuclear Theory 2013-01-24 v1 Computational Physics

Abstract

The demands of cutting-edge science are driving the need for larger and faster computing resources. With the rapidly growing scale of computing systems and the prospect of technologically disruptive architectures to meet these needs, scientists face the challenge of effectively using complex computational resources to advance scientific discovery. Multidisciplinary collaborating networks of researchers with diverse scientific backgrounds are needed to address these complex challenges. The UNEDF SciDAC collaboration of nuclear theorists, applied mathematicians, and computer scientists is developing a comprehensive description of nuclei and their reactions that delivers maximum predictive power with quantified uncertainties. This paper describes UNEDF and identifies attributes that classify it as a successful computational collaboration. We illustrate significant milestones accomplished by UNEDF through integrative solutions using the most reliable theoretical approaches, most advanced algorithms, and leadership-class computational resources.

Keywords

Cite

@article{arxiv.1205.0227,
  title  = {UNEDF: Advanced Scientific Computing Collaboration Transforms the Low-Energy Nuclear Many-Body Problem},
  author = {H. Nam and M. Stoitsov and W. Nazarewicz and A. Bulgac and G. Hagen and M. Kortelainen and P. Maris and J. C. Pei and K. J. Roche and N. Schunck and I. Thompson and J. P. Vary and S. M. Wild},
  journal= {arXiv preprint arXiv:1205.0227},
  year   = {2013}
}

Comments

12 pages, 15 figures, Proceedings for Conference on Computational Physics (CCP2011)

R2 v1 2026-06-21T20:57:14.216Z