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Parallel image restoration using surrogate constraint methods

机译:使用替代约束方法进行并行图像恢复

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When formulated as a system of linear inequalities, the image restoration problem yields huge, unstructured, sparse matrices even for images of small size. To solve the image restoration problem, we use the surrogate constraint methods that can work efficiently for large problems. Among variants of the surrogate constraint method, we consider a basic method performing a single block projection in each step and a coarse-grain parallel version making simultaneous block projections. Using several state-of-the-art partitioning strategies and adopting different communication models, we develop competing parallel implementations of the two methods. The implementations are evaluated based on the per iteration performance and on the overall performance. The experimental results on a PC cluster reveal that the proposed parallelization schemes are quite beneficial.
机译:当公式化为线性不等式系统时,即使对于小尺寸图像,图像恢复问题也会产生巨大的,非结构化的,稀疏的矩阵。为了解决图像恢复问题,我们使用了替代约束方法,该方法可以有效解决大问题。在替代约束方法的变体中,我们考虑了在每个步骤中执行单个块投影的基本方法,以及同时进行块投影的粗粒度并行版本。使用几种最新的分区策略并采用不同的通信模型,我们开发了这两种方法的竞争性并行实现。基于每次迭代性能和整体性能对实现进行评估。在PC机群上的实验结果表明,提出的并行化方案非常有益。

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