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Parallel solution of sparse linear systems on a vector multiprocessor computer

机译:向量多处理器计算机上稀疏线性系统的并行解决方案

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An efficient approach is described for solving sparse linear systems using direct methods on a shared-memory vector multiprocessor computer. Parallelism is accomplished by using a nested bordered block diagonal matrix partitioning technique. A nested block structure is used to represent the sparse matrix, making possible the use of vectorization to achieve high performance. This approach is suitable for many applications that require the repeated direct solution of sparse linear systems with identical matrix structure, such as circuit simulation. The approach has been implemented in a program that runs on an ALLIANT FX/8 vector multiprocessor with shared memory. The performance of the program is described.
机译:描述了一种在共享内存矢量多处理器计算机上使用直接方法求解稀疏线性系统的有效方法。并行性是通过使用嵌套的有边界块对角矩阵划分技术来实现的。嵌套块结构用于表示稀疏矩阵,从而可以使用矢量化来实现高性能。这种方法适用于许多需要重复直接解决具有相同矩阵结构的稀疏线性系统的应用,例如电路仿真。该方法已在具有共享内存的ALLIANT FX / 8矢量多处理器上运行的程序中实现。描述了程序的性能。

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