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Parallel execution of SVM training using graphics processing units (SVMTrGPUs)

机译:使用图形处理单元(SVMTRGPU)并行执行SVM培训

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Parallel computing is a simultaneous use of multiple compute resources, for example, processors to solve complex computational problems. It has been used in high-end computing areas such as pattern recognition, medical diagnosis, national defense, and web search engine. This paper focuses on the implementation of pattern classification technique, Support Vector Machine (SVM) using vector processor approach. We have carried out a performance analysis to benchmark the sequential SVM program against the Graphics Processing Units (GPUs) optimization. The result shows that the parallelization of SVM training duration achieves a better performance than the sequential code speedups by 6.40.
机译:并行计算是同时使用多个计算资源,例如,处理器来解决复杂的计算问题。它已被用于高端计算领域,例如模式识别,医疗诊断,国防和网络搜索引擎。本文侧重于使用矢量处理器方法的模式分类技术的实现,支持向量机(SVM)。我们已经进行了对图形处理单元(GPU)优化的顺序SVM程序基准测试的性能分析。结果表明,SVM训练持续时间的并行化比6.40的顺序代码加速更好​​的性能。

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