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首页> 外文期刊>International Journal of Parallel, Emergent and Distributed Systems >Efficient parallel solutions to the integral knapsack problem on current chip-multiprocessor systems
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Efficient parallel solutions to the integral knapsack problem on current chip-multiprocessor systems

机译:当前芯片多处理器系统上积分背包问题的高效并行解决方案

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摘要

The emergence of chip-multiprocessor systems has dramatically increased the performance potential of computer systems. However, harnessing the full potential of these systems depends largely on the effectiveness of system software, such as compilers, in exploiting the on-chip parallelism. Additionally, since the amount of parallelism extracted by a compiler is directly influenced by the selection of the algorithm, algorithmic choice also plays a critical role in achieving a high fraction of peak performance. Hence, in the era of multicore computing, it is imperative that we re-evaluate and rethink algorithms for key problem domains. This paper investigates the impact of algorithmic choice on the performance of parallel implementations of the integral knapsack problem on multicore architectures. The study considers two classes of algorithms and several algorithmic variants and evaluates each implementation based on a variety of performance metrics including data locality and sharing, granularity of parallelism and scalability. The paper presents experimental results that show how each performance factor is affected by the selection of algorithm, changes in the input data-set and variations in architectural characteristics such as cache capacity and degree of cache sharing.
机译:芯片多处理器系统的出现极大地提高了计算机系统的性能潜力。但是,充分利用这些系统的潜力在很大程度上取决于系统软件(例如编译器)在利用片上并行性方面的有效性。另外,由于编译器提取的并行度的数量直接受到算法选择的影响,因此算法选择在实现高峰值性能方面也起着关键作用。因此,在多核计算时代,必须重新评估和重新考虑关键问题领域的算法。本文研究了算法选择对整数背包问题在多核体系结构上并行实现的性能的影响。该研究考虑了两类算法和几种算法变体,并基于各种性能指标(包括数据局部性和共享性,并行性的粒度和可伸缩性)对每种实现进行了评估。本文提供的实验结果表明,算法的选择,输入数据集的变化以及架构特征(例如缓存容量和缓存共享程度)的变化如何影响每个性能因素。

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