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hpc-numerics

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UpdatedJune 9, 2026 at 17:01

Practitioner knowledge base for the numerical and algorithmic theory of high-performance scientific computing — the science beneath the parallel-programming mechanics. Use when reasoning about numerical correctness, algorithm design, or performance modeling: floating-point arithmetic and round-off error (machine epsilon, catastrophic cancellation, non-associativity, Kahan summation); conditioning vs stability (condition number, backward stability); ODE/PDE discretization (finite differences, stencils, explicit vs implicit Euler, stiffness, CFL condition, method of lines); numerical linear algebra (LU factorization, pivoting, sparse matrices, fill-in, reordering); iterative and Krylov solvers (Jacobi/Gauss-Seidel, CG, GMRES, preconditioning, multigrid); performance programming (the memory wall, cache blocking/tiling, the roofline model, arithmetic intensity); high-performance linear algebra (BLAS levels, gemm, block algorithms); combinatorial algorithms (parallel sorting networks, graph algorithms as sparse li

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