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This code utilizes the message passing interface (MPI) library, overlapping domain decomposition, and dynamic memory allocation techniques.
This code utilizes a unified scheme for fluid solid boundary to correctly model land and seafloor topography (Takenaka et al. 2009) and employs perfectly matched layer (PML) absorbing boundaries to suppress the artificial reflections from the sides and bottom of the computational domain.
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It will be shown that this code, utilizing the GSTA model, was able to describe a wide variety of gas-solid adsorption systems at equilibrium.
This parallel code utilizes D3 with a message passing interface (MPI) in order to permit efficient implementation on clusters of distributed memory machines and may also simultaneously exploit threading for multiprocessing shared address space architectures.
This code particularly utilizes redundancy to augment the separability in the Hamming space for enabling one-to-one correspondence between every non-reference codeword and the Hamming distance incurred with respect to every possible reference codeword.
The code utilizes different object-oriented programming (OOP) features.
The code utilizes two recent acoustic formulations in the time domain for subsonic and supersonic sources.
The code utilizes a distributed memory parallelization scheme with strip-domain decomposition.
The code utilizes a wave model and numerical fluctuation distribution (FD) scheme that runs on structured or unstructured triangular meshes.
Even for the simplest 4 node mechanical element our code utilizes close to 100% of the per-blade available memory bandwidth.
Now this code is utilized by Airbus.
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CEO of Professional Science Editing for Scientists @ prosciediting.com