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Optimizing data intensive GPGPU computations for DNA sequence alignment

โœ Scribed by Cole Trapnell; Michael C. Schatz


Book ID
103878416
Publisher
Elsevier Science
Year
2009
Tongue
English
Weight
587 KB
Volume
35
Category
Article
ISSN
0167-8191

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โœฆ Synopsis


MUMmerGPU uses highly-parallel commodity graphics processing units (GPU) to accelerate the data-intensive computation of aligning next generation DNA sequence data to a reference sequence for use in diverse applications such as disease genotyping and personal genomics. MUMmerGPU 2.0 features a new stackless depth-first-search print kernel and is 13ร— faster than the serial CPU version of the alignment code and nearly 4ร— faster in total computation time than MUMmerGPU 1.0. We exhaustively examined 128 GPU data layout configurations to improve register footprint and running time and conclude higher occupancy has greater impact than reduced latency. MUMmerGPU is available open-source at http://mummergpu.sourceforge.net.


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