Title :
High Quality Real-Time Image-to-Mesh Conversion for Finite Element Simulations
Author :
Foteinos, P. ; Chrisochoides, Nikos
Author_Institution :
Dept. of Comput. Sci., Coll. of William & Mary, Williamsburg, VA, USA
Abstract :
In this poster, we present a parallel Image-to-Mesh Conversion (I2M) algorithm with quality and fidelity guarantees achieved by dynamic point insertions and removals. Starting directly from an image, it is able to recover the surface and mesh the volume with tetrahedra of good shape. Our tightly-coupled shared-memory parallel speculative execution paradigm employs carefully designed memory and contention managers, load balancing, synchronization and optimizations schemes, while it maintains high single-threaded performance: our single-threaded performance is faster than CGAL, the state of the art sequential I2M software we are aware of. Our meshes come also with theoretical guarantees: the radius-edge is less than 2 and the planar angles of the boundary triangles are more than 30 degrees. The effectiveness of our method is shown on Blacklight, the large cache-coherent NUMA machine of Pittsburgh Supercomputing Center. We observe a more than 74% strong scaling efficiency for up to 128 cores and a super-linear weak scaling efficiency for up to 128 cores.
Keywords :
finite element analysis; image processing; mesh generation; optimisation; parallel processing; real-time systems; resource allocation; shared memory systems; storage management; synchronisation; CGAL; Pittsburgh Supercomputing Center; boundary triangles; contention managers; dynamic point insertions; dynamic point removals; finite element simulations; high quality real-time image-to-mesh conversion; large cache-coherent NUMA machine; load balancing; memory managers; optimization schemes; parallel I2M algorithm; parallel image-to-mesh conversion algorithm; radius-edge ratio; single-threaded performance; state of the art sequential I2M software; super-linear weak scaling efficiency; synchronization schemes; tetrahedra shape; tightly-coupled shared-memory parallel speculative execution paradigm;
Conference_Titel :
High Performance Computing, Networking, Storage and Analysis (SCC), 2012 SC Companion:
Conference_Location :
Salt Lake City, UT
Print_ISBN :
978-1-4673-6218-4
DOI :
10.1109/SC.Companion.2012.322