Advanced FDTD methods : parallelization, acceleration, and by Wenhua Yu; et al

By Wenhua Yu; et al

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27] D. com/en-us/articles/ optimizing-software-applications-for-numa/. pdf. [29] Intel® 64 and IA-32 Architectures Optimization Reference Manual. 8, “Affinities and Managing Shared Platform Resources,” March 2009. [30] C. Lameter, “Local and Remote Memory: Memory in a Linux/NUMA System,” http://www. pdf. [31] J. Berenger, “A Perfectly Matched Layer Medium for the Absorption of Electromagnetic Waves,” Journal of Computational Physics, Vol. 114, October 1994, pp. 185−200. [32] S. Gedney, “An Anisotropic Perfectly Matched Layer-Absorbing Medium for the Truncation of FDTD Lattices,” IEEE Transactions on Antennas and Propagation, Vol.

Submit the project to the cluster for simulation for the parallel processing. 11. Open the display window to visualize the simulation results. Visualize the simulation results in the display window, or export the results to the text file to do the data postprocessing in other software. 3 DIPOLE ANTENNA The dipole [4] is one of the simplest antennas, which is often used as the test case to check the accuracy electromagnetic software. In this section, we use the FDTD code to simulate the dipole antenna and describe the most important considerations for the simulation.

Pminub Returns minimum of two values in each of eight unsigned byte values. pmovmskb - Builds mask byte from top bit of 8-byte values. pmulhuw - Multiplies four unsigned word values and stores the high 16-bit result. pshufw Shuffles four word values. Takes two 128-bit values (source and dest) and an 8-bit immediate value, and then fills in each Dest 32-bit value from a source 32-bit value specified by the immediate. The immediate byte is broken into four 2-bit values. Logic: andnps andps orps xorps Compare: cmpxxps cmpxxss - Logically ANDs four single-precision values with the logical inverse (NOT) of four other single-precision values.

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