Key result
GPU acceleration of the electrophysiology problem provided speedups of up to 164x compared with single-core CPU and 5.5x compared with multi-core CPU for the ODE model.
GPU acceleration significantly improves the computational speed of human electromechanical cardiac simulations compared to single and multi-core CPU executions.
Speeds cardiac electromechanical modeling; extends high-fidelity simulation research but leaves clinical translation open.
In this paper, we look at the acceleration of weakly coupled electromechanics using the graphics processing unit (GPU). Specifically, we port to the GPU a number of components of CHeart--a CPU-based finite element code developed for simulating multi-physics problems. On the basis of a criterion of computational cost, we implemented on the GPU the ODE and PDE solution steps for the electrophysiology problem and the Jacobian and residual evaluation for the mechanics problem. Performance of the GPU implementation is then compared with single core CPU (SC) execution as well as multi-core CPU (MC) computations with equivalent theoretical performance. Results show that for a human scale left ventricle mesh, GPU acceleration of the electrophysiology problem provided speedups of 164 × compared with SC and 5.5 times compared with MC for the solution of the ODE model. Speedup of up to 72 × compared with SC and 2.6 × compared with MC was also observed for the PDE solve. Using the same human geometry, the GPU implementation of mechanics residual/Jacobian computation provided speedups of up to 44 × compared with SC and 2.0 × compared with MC.
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Vigueras et al. (2013) studied Cardiac simulations. GPU acceleration (GPGPU) vs. Single core CPU (SC) and multi-core CPU (MC) was evaluated on Computational speedup for ODE, PDE, and mechanics residual/Jacobian computation. GPU acceleration of the electrophysiology problem provided speedups of up to 164x compared with single-core CPU and 5.5x compared with multi-core CPU for the ODE model.
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