| B. Garca-Archilla, J. M. Sanz-Serna, and R. D. Skeel. Long-time-step methods for oscillatory differential equations. SIAM J. Sci. Comput., 20(3):930--963, Oct. 20, 1998. |
....in paper [D] Section 5.8.2 gives a practical example of how an existing sequential force can be parallelized. On the other hand, the design and development are also user and application driven: 1. Components to implement sophisticated integrators and fast force evaluators, such as MOLLY [44, 45, 58, 59, 60, 62] and Dissipative Molly [82] and multi grid summation [13, 107] PME methods [26, 27, 33, 54] and standard Ewald summation [34] 2. Facilities to compare accuracy of force methods, and to make decisions concerning optimal parameters and method for a given accuracy and system. 3. Components to ....
B. Garca-Archilla, J. M. Sanz-Serna, and R. D. Skeel. Long-time-step methods for oscillatory differential equations. SIAM J. Sci. Comput., 20(3):930--963, October 20, 1998.
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B. Garca-Archilla, J. M. Sanz-Serna, and R. D. Skeel. Long-time-step methods for oscillatory differential equations. SIAM J. Sci. Comput., 20(3):930--963, Oct. 20, 1998.
No context found.
B. Garca-Archilla, J. M. Sanz-Serna, and R. D. Skeel. Long-time-step methods for oscillatory differential equations. SIAM J. Sci. Comput., 20(3):930--963, 1998.
No context found.
B. Garca-Archilla, J. M. Sanz-Serna, and R. D. Skeel. Long-time-step methods for oscillatory differential equations. SIAM J. Sci. Comput., 20(3):930--963, Oct. 20, 1998. 98
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B. Garca-Archilla, J. M. Sanz-Serna, and R. D. Skeel. Long-time-step methods for oscillatory differential equations. SIAM J. Sci. Comput., 20(3):930--963 (electronic), 1999.
No context found.
B. Garca-Archilla, J. M. Sanz-Serna, and R. D. Skeel. Long-time-step methods for oscillatory differential equations. SIAM J. Sci. Comput., 20(3):930--963 (electronic), 1999.
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