Title :
High performance radiation transport simulations: Preparing for TITAN
Author :
Baker, Chams ; Davidson, Glenn ; Evans, T.M. ; Hamilton, S. ; Jarrell, J. ; Joubert, W.
Author_Institution :
Oak Ridge Nat. Lab. Oak Ridge, Oak Ridge, TN, USA
Abstract :
In this paper we describe the Denovo code system. Denovo solves the six-dimensional, steady-state, linear Boltzmann transport equation, of central importance to nuclear technology applications such as reactor core analysis (neutronics), radiation shielding, nuclear forensics and radiation detection. The code features multiple spatial differencing schemes, state-of-the-art linear solvers, the Koch-Baker-Alcouffe (KBA) parallel-wavefront sweep algorithm for inverting the transport operator, a new multilevel energy decomposition method scaling to hundreds of thousands of processing cores, and a modern, novel code architecture that supports straightforward integration of new features. In this paper we discuss the performance of Denovo on the 20+ petaflop ORNL GPU-based system, Titan. We describe algorithms and techniques used to exploit the capabilities of Titan´s heterogeneous compute node architecture and the challenges of obtaining good parallel performance for this sparse hyperbolic PDE solver containing inherently sequential computations. Numerical results demonstrating Denovo performance on early Titan hardware are presented.
Keywords :
Boltzmann equation; graphics processing units; nuclear engineering computing; parallel algorithms; partial differential equations; Denovo code system; KBA parallel-wavefront sweep algorithm; Koch-Baker-Alcouffe algorithm; Oak Ridge National Laboratory; Titan hardware; Titan heterogeneous compute node architecture; code architecture; graphics processing unit; high performance radiation transport simulation; linear Boltzmann transport equation; linear solver; multilevel energy decomposition method; neutronics; nuclear forensics; nuclear technology application; parallel performance; partial differential equation; petaflop ORNL GPU-based system; radiation detection; radiation shielding; reactor core analysis; sparse hyperbolic PDE solver; spatial differencing scheme; Computational modeling; Eigenvalues and eigenfunctions; Equations; Inductors; Parallel processing; Program processors; Vectors;
Conference_Titel :
High Performance Computing, Networking, Storage and Analysis (SC), 2012 International Conference for
Conference_Location :
Salt Lake City, UT
Print_ISBN :
978-1-4673-0805-2