Automated Code Generation for Lattice QCD Simulation
BARTHOU, Denis
Laboratoire Bordelais de Recherche en Informatique [LaBRI]
Efficient runtime systems for parallel architectures [RUNTIME]
Laboratoire Bordelais de Recherche en Informatique [LaBRI]
Efficient runtime systems for parallel architectures [RUNTIME]
PETROV, Konstantin
Laboratoire de l'Accélérateur Linéaire [LAL]
Laboratoire de Physique Théorique d'Orsay [Orsay] [LPT]
Institut de Recherches sur les lois Fondamentales de l'Univers [IRFU]
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Laboratoire de l'Accélérateur Linéaire [LAL]
Laboratoire de Physique Théorique d'Orsay [Orsay] [LPT]
Institut de Recherches sur les lois Fondamentales de l'Univers [IRFU]
BARTHOU, Denis
Laboratoire Bordelais de Recherche en Informatique [LaBRI]
Efficient runtime systems for parallel architectures [RUNTIME]
Laboratoire Bordelais de Recherche en Informatique [LaBRI]
Efficient runtime systems for parallel architectures [RUNTIME]
PETROV, Konstantin
Laboratoire de l'Accélérateur Linéaire [LAL]
Laboratoire de Physique Théorique d'Orsay [Orsay] [LPT]
Institut de Recherches sur les lois Fondamentales de l'Univers [IRFU]
Laboratoire de l'Accélérateur Linéaire [LAL]
Laboratoire de Physique Théorique d'Orsay [Orsay] [LPT]
Institut de Recherches sur les lois Fondamentales de l'Univers [IRFU]
KRUSE, Michael
Global parallel and distributed computing [GRAND-LARGE]
Systèmes parallèles (LRI) [ParSys - LRI]
Global parallel and distributed computing [GRAND-LARGE]
Systèmes parallèles (LRI) [ParSys - LRI]
EISENBEIS, Christine
Global parallel and distributed computing [GRAND-LARGE]
Systèmes parallèles (LRI) [ParSys - LRI]
< Réduire
Global parallel and distributed computing [GRAND-LARGE]
Systèmes parallèles (LRI) [ParSys - LRI]
Langue
en
Rapport
Ce document a été publié dans
2013-12-15p. 13
Résumé en anglais
Quantum Chromodynamics (QCD) is the theory of strong nuclear force, responsible of the interactions between sub-nuclear particles. QCD simulations are typically performed through the lattice gauge theory approach, which ...Lire la suite >
Quantum Chromodynamics (QCD) is the theory of strong nuclear force, responsible of the interactions between sub-nuclear particles. QCD simulations are typically performed through the lattice gauge theory approach, which provides a discrete analytical formalism called LQCD (Lattice Quantum Chromodynamics). LQCD simulations usually involve generating and then processing data on petabyte scale which demands multiple teraflop-years on supercomputers. Large parts of both, generation and analysis, can be reduced to the inversion of an extremely large matrix, the so-called Wilson-Dirac operator. For this purpose, and because this matrix is always sparse and structured, iterative methods are definitely considered. Therefore, the procedure of the application of this operator, resulting in a vector-matrix product, appears as a critical computation kernel that should be optimized as much as possible. Evaluating the Wilson-Dirac operator involves symmetric stencil calculations where each node has 8 neighbors. Such configuration is really hindering when it comes to memory accesses and data exchanges among processors. For current and future generation of supercomputers the hierarchical memory structure make it next to impossible for a physicist to write an efficient code. Addressing these issues in other to harvest an acceptable amount of computing cycles for the real need, which means reaching a good level of efficiency, is the main concern of this paper. We present here a Domain Specific Language and corresponding toolkit, called QIRAL, which is a complete solution from symbolic notation to simulation code.< Réduire
Mots clés en anglais
linear system
LQCD
HPC
code generation
accelerator
parallel
matrix
Project ANR
Vers le Petaflop pour LQCD - ANR-08-COSI-0010
Origine
Importé de halUnités de recherche