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Parallel variable-resolution bathymetric estimation with static load balancing

机译:具有静态负载平衡的并行可变分辨率水深估算

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A method for partitioning a large computation task (direct, variable resolution bathymetric grid construction from raw observations) into thread-parallel code is described. Based on the data density estimated for the first pass of the CHRT algorithm, this algorithm statically partitions the estimation task into spatially distinct blocks of approximately equal total data observation count so that each can be executed in parallel and be expected to complete approximately concurrently. No communication between blocks or further load balancing is therefore required. A branch-and-bound algorithm is used to control the complexity of the partitioning task, but the computation time increases significantly as more partitions are required, leading to a degree of diminishing returns for allocating further computational resources and suggesting alternative approaches for high thread count systems. Speed-up of the algorithm over a pair of test datasets (using real-world hydrographic survey data) shows that the performance consistently improves with the number of computational tasks assigned, initially (super-) linearly, although ultimately sub-linearly as other resource sharing limitations take over. An overall speedup of 4.1 times is demonstrated with a quad-core single-processor workstation.
机译:描述了一种将大型计算任务(来自原始观测值的直接可变分辨率测深网格结构)划分为线程并行代码的方法。基于为CHRT算法的第一遍估算的数据密度,此算法将估算任务静态划分为空间上不同的块,这些块的数据观测计数近似相等,因此每个数据块都可以并行执行,并且可以大致同时完成。因此,不需要块之间的通信或进一步的负载平衡。分支定界算法用于控制分区任务的复杂性,但是随着需要更多分区,计算时间会显着增加,从而导致分配更多计算资源的收益递减程度,并提出了高线程数的替代方法系统。在一对测试数据集上的算法加速(使用真实的水文勘测数据)显示,性能随着分配的计算任务数量而不断提高,这些任务最初是(超级)线性的,尽管最终与其他资源一样是亚线性的共享限制接管。四核单处理器工作站的速度提高了4.1倍。

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