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Exploring thread-level parallelism based on cost-driven model for irregular programs

机译:探索基于成本驱动模型的线程级并行性

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Speculative Multithreading (SpMT) technology is an effective mechanism for automatic parallelization of irregular programs. For a sequential program, they can be executed speculatively in parallel by speculating that many data dependences are unlikely during runtime. Although speculative parallelization can potentially deliver significant speedup, several overheads associated with this technique can limit these speedups in practice. To take full advantage of SpMT technology, a sequential program should be programmed or compiled according the SpMT execution model. In this paper, we propose a comprehensive cost-driven compilation method to predict the resulting performance. 1)According the cost model, we can predict the resulting performance for speculative thread partitioning; 2) based on the thorough analysis of the main speculative parallelization overheads, we attempt to compress the speculative thread solution space by combining the heuristic rules. Different from prior methods that only qualitatively estimate the benefits of speculative multithreaded execution, this method also produces a quantitative estimate of the speedup in theory. Experimental results show that the proposed method is effective. we can gain 10.2% performance improvement on Olden benchmark suits.
机译:推测多线程(SpMT)技术是一种有效的机制,用于自动并行化不规则程序。对于顺序程序,可以通过推测运行时不太可能依赖许多数据来并行地以推测方式执行它们。尽管推测性并行化可以潜在地显着提高速度,但与该技术相关的一些开销实际上可能会限制这些速度。为了充分利用SpMT技术,应该根据SpMT执行模型对顺序程序进行编程或编译。在本文中,我们提出了一种综合的成本驱动的编译方法来预测最终的性能。 1)根据成本模型,我们可以预测推测性线程分区的结果性能; 2)基于对主要推测并行化开销的透彻分析,我们尝试通过结合启发式规则来压缩推测线程解决方案空间。与仅通过定性估计推测性多线程执行的好处的现有方法不同,该方法还可以对理论上的加速进行定量估计。实验结果表明,该方法是有效的。我们可以将Olden基准套装的性能提高10.2%。

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