DocumentCode
560147
Title
Hardware/software co-design for energy-efficient seismic modeling
Author
Krueger, Jens ; Donofrio, David ; Shalf, John ; Mohiyuddin, Marghoob ; Williams, Samuel ; Oliker, Leonid ; Pfreundt, Franz-Josef
Author_Institution
Comput. Res. Div., Lawrence Berkeley Nat. Lab., Berkeley, CA, USA
fYear
2011
fDate
12-18 Nov. 2011
Firstpage
1
Lastpage
12
Abstract
Reverse Time Migration (RTM) has become the standard for high-quality imaging in the seismic industry. RTM relies on PDE solutions using stencils that are 8th order or larger, which require large-scale HPC clusters to meet the computational demands. However, the rising power consumption of conventional cluster technology has prompted investigation of architectural alternatives that offer higher computational efficiency. In this work, we compare the performance and energy efficiency of three architectural alternatives the Intel Nehalem X5530 multicore processor, the NVIDIA Tesla C2050 GPU, and a general-purpose manycore chip design optimized for high-order wave equations called "Green Wave." We have developed an FPGA-accelerated architectural simulation platform to accurately model the power and performance of the Green Wave design. Results show that across highly-tuned high-order RTM stencils, the Green Wave implementation can offer up to 8× and 3.5× energy efficiency improvement per node respectively, compared with the Nehalem and GPU platforms. These results point to the enormous potential energy advantages of our hardware/software co-design methodology.
Keywords
field programmable gate arrays; geophysics computing; graphics processing units; hardware-software codesign; multiprocessing systems; power aware computing; seismology; wave equations; FPGA-accelerated architectural simulation platform; Green Wave design; HPC cluster; Intel Nehalem X5530 multicore processor; NVIDIA Tesla C2050 GPU; PDE; RTM stencil; energy-efficient seismic modeling; general-purpose manycore chip design; hardware-software codesign; high-order wave equation; reverse time migration; seismic imaging; Computer architecture; Graphics processing unit; Green products; Hardware; Propagation; System-on-a-chip; GPU; RTM; co-design; manycore; seismic; stencil;
fLanguage
English
Publisher
ieee
Conference_Titel
High Performance Computing, Networking, Storage and Analysis (SC), 2011 International Conference for
Conference_Location
Seatle, WA
Electronic_ISBN
978-1-4503-0771-0
Type
conf
Filename
6114412
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