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Optimization solutions for the segmented sum algorithmic function

机译:分段和算法函数的优化解决方案

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In this paper, there are depicted optimization solutions for the segmented sum algorithmic function, developed using the Compute Unified Device Architecture (CUDA), a powerful and efficient solution for optimizing a wide range of applications. The parallel-segmented sum is often used in building many data processing algorithms and through its optimization, one can improve the overall performance of these algorithms. In order to evaluate the usefulness of the optimization solutions and the performance of the developed segmented sum algorithmic function, I benchmark this function and analyse the obtained experimental results.
机译:在本文中,示出了用于分段和算法函数的优化解决方案,使用计算统一设备架构(CUDA),强大而有效的解决方案,用于优化各种应用。并行分段总和通常用于构建许多数据处理算法并通过其优化来提高这些算法的整体性能。为了评估优化解决方案的有用性和开发的分段和算法功能的性能,I基准测试该功能并分析所获得的实验结果。

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