[1]
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Sieniek, M. and Paszyński, M. (2014) Subtree Reuse in Multi-Frontal Solvers for Regular Grids in Step-and-Flash Imprint Nanolithography Modeling. Advanced Engineering Materials, 16, 231-240.
http://dx.doi.org/10.1002/adem.201300267
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[2]
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Demkowicz, L., Gatto, P., Kurtz, J., Paszynski, M., Rachowicz, W., Bleszynski, E., Bleszynski, M., Hamilton, M. and Champlin, C. (2010) Modeling of Bone Conduction of Sound in the Human Head Using hp Finite Elements I. Code Design and Verification. Computer Methods in Applied Mechanics and Engineering, 200, 1757-1773.
http://dx.doi.org/10.1016/j.cma.2011.02.001
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[3]
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Paszyński, M. (2013) Minimizing the Memory Usage with Parallel Out-of-Core Multi-Frontal Direct Solver. Computer Assisted Mechanics and Engineering Sciences, 20, 15-41.
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[4]
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Demkowicz, L., Kurtz, J., Pardo, D., Paszyński, M., Rachowicz, W. and Zdunek, A. (2007) Computing with hp-Ada- ptive Finite Elements, vol. II. Three Dimensional Elliptic and Maxwell Problems with Applications. Chapmann & Hall, CRC Press.
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[5]
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Paszyński, M., Pardo, D., Torres-Verdin, C., Demkowicz, L. and Calo, V. (2010) A Parallel Direct Solver for the Self-Adaptive hp Finite Element Method. Journal of Parallel and Distributed Computing, 70, 270-281.
http://dx.doi.org/10.1016/j.jpdc.2009.09.007
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[6]
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Paszyński, M. and Schaefer, R. (2010) Graph Grammar Driven Parallel Partial Differential Equation Solver. Concurrency & Computations, Practise & Experience, 22, 1063-1097.
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[7]
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Paszyński, M., Pardo, D. and Paszyńska, A. (2010) Parallel Multi-Frontal Solver for p Adaptive Finite Element Modeling of Multi-Physics Computational Problems. Journal of Computational Science, 1, 48-54.
http://dx.doi.org/10.1016/j.jocs.2010.03.002
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