Remove module references from t_inputrec
[gromacs.git] / docs / manual / monster.bib
blob613bbbffc36217d1c4604defab10c0f57143049e
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2 @String{BTacb = "Act. Cryst. B."}
3 @String{BTacd = "Act. Cryst. D."}
4 @String{BTacp = "Adv. Chem. Phys."}
5 @String{BTang = "Angew. Chemie"}
6 @String{BTarbb = "Annu. Rev. Biophys. Biomol. Struct."}
7 @String{BTarbbc = "Annu. Rev. Biophys. Biophys. Chem."}
8 @String{BTarbc = "Annu. Rev. Biochem."}
9 @String{BTarbp = "Annu. Rev. Biophys."}
10 @String{BTarpc = "Annu. Rev. Phys. Chem."}
11 @String{BTarp = "Annu. Rev. Physiol."}
12 @String{BTarchbb= "Arch. Bioch. Bioph."}
13 @String{BTbba = "Biochim. Biophys. Acta"}
14 @String{BTbcb = "Biochem. Cell. Biol."}
15 @String{BTbbpc = "Ber. Bunsenges. Phys. Chem."}
16 @String{BTbbrc = "Biochem. Biophys. Res. Comm."}
17 @String{BTbioch = "Biochemistry"}
18 @String{BTbiopc = "Bioph. Chem."}
19 @String{BTbj = "Biophys. J."}
20 @String{BTbiop = "Biopolymers"}
21 @String{BTbi = "Bioch. Int."}
22 @String{BTbmbi = "Biochem. Mol. Biol. Int."}
23 @String{BTcb = "Curr. Biol."}
24 @String{BTcosb = "Curr. Opin. Struct. Biol."}
25 @String{BTcpc = "Comp. Phys. Comm."}
26 @String{BTcpl = "Chem. Phys. Lett."}
27 @String{BTcp = "Chem. Phys."}
28 @String{BTcr = "Chem. Rev."}
29 @String{BTcsr = "Chem. Soc. Rev."}
30 @String{BTejb = "Eur. J. Biochem."}
31 @String{BTebj = "Eur. Biophys. J."}
32 @String{BTfaseb = "FASEB J."}
33 @String{BTfebs = "FEBS Lett."}
34 @String{BTijqc = "Int. J. Quant. Chem."}
35 @String{BTijpp = "Int. J. Pept. Prot. Res."}
36 @String{BTisrjc = "Isr. J. Chem."}
37 @String{BTjacs = "J. Am. Chem. Soc."}
38 @String{BTjapl = "J. Appl. Crystallogr."}
39 @String{BTjaplp = "J. Appl. Phys."}
40 @String{BTjbc = "J. Biol. Chem."}
41 @String{BTjbnmr = "J. Biomol. NMR"}
42 @String{BTjbsd = "J. Biomol. Struct. Dyn."}
43 @String{BTjcaid = "J. Comp. Aid. Mol. Design"}
44 @String{BTjcc = "J. Comp. Chem."}
45 @String{BTjced = "J. Chem. Eng. Data"}
46 @String{BTjcomp = "J. Comp. Phys."}
47 @String{BTjcp = "J. Chem. Phys."}
48 @String{BTjcsft = "J. Chem. Soc. Far. Trans."}
49 @String{BTjctc = "J. Chem. Theory Comput."}
50 @String{BTjmb = "J. Mol. Biol."}
51 @String{BTjmag = "J. Magn. Reson."}
52 @String{BTjmagb = "J. Magn. Reson. Ser. B"}
53 @String{BTjmm = "J. Mol. Mod."}
54 @String{BTjmst = "J. Mol. Struct. (THEOCHEM)"}
55 @String{BTjms = "J. Mol. Struct."}
56 @String{BTjpa = "J. Phys. A."}
57 @String{BTjpc = "J. Phys. Chem."}
58 @String{BTjpca = "J. Phys. Chem. A."}
59 @String{BTjpcb = "J. Phys. Chem. B."}
60 @String{BTlang = "Langmuir"}
61 @String{BTmph = "Mol. Phys."}
62 @String{BTmcb = "Mol. Cell. Bioch."}
63 @string{BTmie = "Methods in Enyzmology"}
64 @String{BTmsim = "Mol. Sim."}
65 @String{BTnature= "Nature"}
66 @String{BTnsb = "Nature Struct. Biol."}
67 @String{BTpeng = "Prot. Eng."}
68 @String{BTpnas = "Proc. Natl. Acad. Sci. USA"}
69 @String{BTpr = "Phys. Rev."}
70 @String{BTpra = "Phys. Rev. {\bf A}"}
71 @String{BTprb = "Phys. Rev. {\bf B}"}
72 @String{BTpre = "Phys. Rev. {\bf E}"}
73 @String{BTprl = "Phys. Rev. Lett."}
74 @String{BTprot = "PROTEINS: Struct. Funct. Gen."}
75 @String{BTpsci = "Prot. Sci."}
76 @String{BTsci = "Science"}
77 @String{BTstr = "Structure"}
78 @String{BTtchim = "Theor. Chim. Acta."}
79 @String{BTtibs = "Trends Biochem. Sci."}
80 @String{BTtibtech= "Trends Biotech."}
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94 @Article{Aalten95,
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106 @Article{Ahlstrom89,
107 author = "P. Ahlstr{\"o}m and A. Wallqvist and S. Engstr{\"o}m
108 and B. J{\"o}nsson",
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112 volume = "68",
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116 @Article{Abad87,
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119 title = "Refined Crystal Structure of {M4} Dogfish Apo-Lactate
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121 journal = BTjmb,
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127 @Book{Abragam61,
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184 @Book{Allen87,
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192 @Article{Astrand91,
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203 @Article{Astrand94a,
204 author = "P. -O. {{\AA}}strand and A. Wallqvist and G.
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218 journal = BTjpc,
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689 booktitle = "Intermolecular Forces",
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7606 author = {B. T. Thole},
7607 title = {Molecular polarizabilities with a modified dipole interaction},
7608 journal = BTcp,
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7614 @Article{Seibert2005a,
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7616 title = {Reproducible polypeptide folding and structure prediction using molecular dynamics simulations},
7617 journal = BTjmb,
7618 year = 2005,
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7623 @Article{Spoel2005a,
7624 author = {David van der Spoel and Erik Lindahl and Berk Hess and Gerrit Groenhof and Alan E. Mark and Herman J. C. Berendsen},
7625 title = {{GROMACS}: {F}ast, {F}lexible and {F}ree},
7626 journal = BTjcc,
7627 year = 2005,
7628 volume = 26,
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7632 @Article{Spoel2006a,
7633 author = {D. van der Spoel and P. J. van Maaren},
7634 title = {The Origin of Layer Structure Artifacts in
7635 Simulations of Liquid Water },
7636 journal = BTjctc,
7637 year = 2006,
7638 volume = 2,
7639 pages = {1--11},
7640 OPTabstract = {},
7641 OPTnote = {},
7642 OPTurl = {http://dx.doi.org/10.1021/ct0502256}
7645 @Article{Spoel2006b,
7646 author = {D. van der Spoel and P. J. van Maaren and P. Larsson and N. Timneanu},
7647 title = {Thermodynamics of hydrogen bonding in hydrophilic and
7648 hydrophobic media},
7649 journal = BTjpcb,
7650 year = 2006,
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7657 @Article{Beutler94,
7658 author = {Thomas C. Beutler and Alan E. Mark and Ren{\'e} C. van Schaik and Paul R. Greber and Wilfred F. van Gunsteren},
7659 title = {Avoiding singularities and numerical instabilities in free energy calculations based on molecular simulations},
7660 journal = BTcpl,
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7666 @Article{Luzar2000a,
7667 author = {A. Luzar},
7668 title = {Resolving the hydrogen bond dynamics conundrum},
7669 journal = BTjcp,
7670 year = 2000,
7671 volume = 113,
7672 pages = {10663--10675},
7673 OPTabstract = {This paper analyzes dynamic properties of hydrogen bonds in liquid water. We use molecular dynamics simulation to calculate different probability densities that govern the time evolution of the formation and rupture of hydrogen bonds. We provide analytical connections between these functions. Excellent agreement with our simulation results is observed. We prove transition state theory rate constant to be identical to the inverse of the associated mean first passage time (hydrogen bond lifetime). Hence, the analysis establishes its Arrhenius temperature dependence. We give the explicit relation between reactive flux correlation function for the relaxation dynamics of hydrogen bonds, and their first passage time probability densities. All the different observations in the existing literature, associated with various estimates of hydrogen bonding times in liquid water that are affected (or not affected) by particular bond criteria, as well as by different definitions of hydrogen bond lifetimes applied in simulation, can be easily reconciled within the framework of reactive flux correlation function approach.},
7674 OPTnote = {}
7677 @Article{Luzar96b,
7678 author = {A. Luzar and D. Chandler},
7679 title = {Hydrogen-bond kinetics in liquid water},
7680 journal = BTnature,
7681 year = 1996,
7682 volume = 379,
7683 pages = {55--57}
7686 @Article{mopac,
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7688 title = {{Development and status of MINDO/3 and MNDO}},
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7697 title = {{Computational chemistry on the FPS-X64 scientific computers - Experience on single- and multi-processor systems}},
7698 journal = {Theor. Chim. Act.},
7699 year = 1987,
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7706 M. A. Robb and J. R. Cheeseman and Montgomery, Jr., J. A. and T. Vreven and
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7708 V. Barone and B. Mennucci and M. Cossi and G. Scalmani and N. Rega and
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7710 R. Fukuda and J. Hasegawa and M. Ishida and T. Nakajima and Y. Honda and O. Kitao and
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7714 P. Y. Ayala and K. Morokuma and G. A. Voth and P. Salvador and J. J. Dannenberg and
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7720 C. Y. Peng and A. Nanayakkara and M. Challacombe and P. M. W. Gill and
7721 B. Johnson and W. Chen and M. W. Wong and C. Gonzalez and J. A. Pople},
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7728 title = {Unified Approach for Molecular Dynamics and Density-Functional Theory},
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7738 journal = BTjcc,
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7744 @Article{Svensson96a,
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7746 title = {{ONIOM} A Multilayered Integrated {MO} + {MM} Method for Geometry Optimizations and Single Point Energy Predictions. A Test for {D}iels-{A}lder Reactions and {Pt(P(t-Bu)3)2} + {H}2 Oxidative Addition},
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7748 year = 1996,
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7753 @Article{Maseras96a,
7754 author = {F. Maseras and K. Morokuma},
7755 title = {{IMOMM: A New Ab Initio + Molecular Mechanics Geometry Optimization Scheme of Equilibrium Structures and Transition States}},
7756 journal = BTjcc,
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7758 volume = 16,
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7762 @Article{Mu2005a,
7763 author = {Yuguang Mu and Phuong H. Nguyen and Gerhard Stock},
7764 title = {Energy landscape of a small peptide revelaed by dihedral angle principal component analysis},
7765 journal = BTprot,
7766 year = 2005,
7767 volume = {58},
7768 pages = {45--52}
7771 @Article{Jorgensen86a,
7772 author = {W. L. Jorgensen86},
7773 title = {Optimized intermolecular potential for liquid alcohols},
7774 journal = BTjpc,
7775 year = 1986,
7776 volume = 90,
7777 pages = {1276--1284}
7780 @Article{Shaw2005a,
7781 author = {D. E. Shaw},
7782 title = {A fast, scalable method for the parallel evaluation of distance-limited pairwise particle interactions},
7783 journal = BTjcc,
7784 year = 2005,
7785 volume = 26,
7786 pages = {1318--1328}}
7788 @Article{Shaw2005,
7789 author = {Kevin J. Bowers and Ron O. Dror and David E. Shaw},
7790 title = {Overview of neutral territory methods for the parallel evauluation of pairwise particle interactions},
7791 journal = {J. Phys. Conf. Ser.},
7792 year = 2005,
7793 volume = 16,
7794 pages = {300--304}
7797 @Article{Shaw2006,
7798 author = {Kevin J. Bowers and Ron O. Dror and David E. Shaw},
7799 title = {The midpoint method for parallelization of particle simulations},
7800 journal = BTjcp,
7801 year = 2006,
7802 volume = 124,
7803 number = 18,
7804 pages = {184109--184109}
7807 @Article{Shaw2007a,
7808 author = {Kevin J. Bowers and Ron O. Dror and David E. Shaw},
7809 title = {Zonal methods for the parallel execution of range-limited $N$-body simulations},
7810 journal = BTjcomp,
7811 year = 2007,
7812 volume = 221,
7813 pages = {303--329}
7816 @Article{Shaw2007b,
7817 author = {Ross A. Lippert and Kevin J. Bowers and Ron O. Dror and Michael P. Eastwood and Brent A. Gregersen and John L. Klepeis and Istvan Kolossvary and D. E. Shaw},
7818 title = {A common, avoidable source of error in molecular dynamics integrators},
7819 journal = BTjcp,
7820 year = 2007,
7821 volume = 126,
7822 pages = 046101
7825 @Article{Shaw2008a,
7826 author = {David E. Shaw and Martin M. Deneroff and Ron O. Dror and Jeffrey S. Kuskin and Richard H. Larson and John K. Salmon and Cliff Young and Brannon Batson and Kevin J. Bowers and Jack C. Chao and Michael P. Eastwood and Joseph Gagliardo and J.P. Grossman and C. Richard Ho and Douglas J. Ierardi and István Kolossváry and John L. Klepeis and Timothy Layman and Christine McLeavey and Mark A. Moraes and Rolf Mueller and Edward C. Priest and Yibing Shan and Jochen Spengler and Michael Theobald and Brian Towles and and Stanley C. Wang},
7827 title = {Anton, A Special-Purpose Machine for Molecular Dynamics Simulation},
7828 journal = {Communications of the ACM},
7829 year = 2008,
7830 volume = 51,
7831 number = 7,
7832 pages = {91--97}}
7834 @Article{Bush2006a,
7835 author = {I. J. Bush and I. T. Todorov and W. Smith},
7836 title = {A DAFT DL_POLY1 distributed memory adaptation of the smoothed particle mesh Ewald method},
7837 journal = {Comput. Phys. Commun.},
7838 volume = {175},
7839 year = {2006},
7840 pages = {323-329},
7841 OPTabstract = {The Smoothed Particle Mesh Ewald method [U. Essmann, L. Perera, M.L.
7842 Berkowtz, T. Darden, H. Lee, L.G. Pedersen, J. Chem. Phys. 103 (1995)
7843 8577] for calculating long ranged forces in molecular simulation has
7844 been adapted for the parallel molecular dynamics code DL_POLY_3 [I.T.
7845 Todorov, W. Smith, Philos. Trans. Roy. Soc. London 362 (2004) 18351,
7846 making use of a novel 3D Fast Fourier Transform (DAFT) [ I.J. Bush, The
7847 Daresbury Advanced Fourier transform, Daresbury Laboratory, 19991 that
7848 perfectly matches the Domain Decomposition (DD) parallelisation
7849 strategy [W. Smith, Comput. Phys. Comm. 62 (1991) 229; M.R.S. Pinches,
7850 D. Tildesley, W. Smith, Mol. Sim. 6 (1991) 51; D. Rapaport, Comput.
7851 Phys. Comm. 62 (1991) 217] of the DL_POLY_3 code. In this article we
7852 describe software adaptations undertaken to import this functionality
7853 and provide a review of its performance. (C) 2006 Elsevier B.V. All
7854 rights reserved.
7855 0010-4655}
7858 @Article{Masella2006a,
7859 author = {M. Masella},
7860 title = {The multiple time step r-RESPA procedure and polarizable potentials based on induced dipole moments},
7861 journal = {Mol. Phys.},
7862 volume = {104},
7863 year = {2006},
7864 pages = {415-428},
7865 OPTabstract = {In the present study, we present an accelerating scheme based on the
7866 reversible multiple time step r-RESPA method to be used in molecular
7867 dynamics simulations with polarizable potentials based on induced
7868 dipole moments. Even if the induced dipoles are estimated with an
7869 iterative self-consistent procedure, this scheme significantly reduces
7870 the CPU time needed to perform a molecular dynamics simulation, up to a
7871 factor 2, as compared to the Car-Parrinello method where additional
7872 dynamical variables are introduced for the treatment of the induced
7873 dipoles. The tests show that stable and reliable molecular dynamics
7874 trajectories can be generated with that scheme, and that the physical
7875 properties derived from the trajectories are equivalent to those
7876 computed with the classical all atom iterative approach and the
7877 Car-Parrinello one.
7878 0026-8976}
7881 @Article{Wang2005a,
7882 author = {W. Wang and R. D. Skeel},
7883 title = {Fast evaluation of polarizable forces},
7884 journal = {J. Chem. Phys.},
7885 volume = {123},
7886 year = {2005},
7887 pages = {164107},
7888 OPTabstract = {Polarizability is considered to be the single most significant
7889 development in the next generation of force fields for biomolecular
7890 simulations. However, the self-consistent computation of induced atomic
7891 dipoles in a polarizable force field is expensive due to the cost of
7892 solving a large dense linear system at each step of a simulation. This
7893 article introduces methods that reduce the cost of computing the
7894 electrostatic energy and force of a polarizable model from about 7.5
7895 times the cost of computing those of a nonpolarizable model to less
7896 than twice the cost. This is probably sufficient for the routine use of
7897 polarizable forces in biomolecular simulations. The reduction in
7898 computing time is achieved by an efficient implementation of the
7899 particle-mesh Ewald method, an accurate and robust predictor based on
7900 least-squares fitting, and non-stationary iterative methods whose fast
7901 convergence is accelerated by a simple preconditioner. Furthermore,
7902 with these methods, the self-consistent approach with a larger timestep
7903 is shown to be faster than the extended Lagrangian approach. The use of
7904 dipole moments from previous timesteps to calculate an accurate initial
7905 guess for iterative methods leads to an energy drift, which can be made
7906 acceptably small. The use of a zero initial guess does not lead to
7907 perceptible energy drift if a reasonably strict convergence criterion
7908 for the iteration is imposed. (c) 2005 American Institute of Physics.
7909 0021-9606}
7912 @Article{Izaguirre2005a,
7913 author = {J. A. Izaguirre and S. S. Hampton and T. Matthey},
7914 title = {Parallel multigrid summation for the N-body problem},
7915 journal = {J. Parallel Distrib. Comput.},
7916 volume = {65},
7917 year = {2005},
7918 pages = {949-962},
7919 OPTabstract = {An Theta(n) parallel multigrid summation method (MG) for the N-body
7920 problem is presented. The method was originally devised for vacuum
7921 boundary conditions. Here, it is extended to periodic boundary
7922 conditions and implemented in parallel using force decomposition and
7923 MPI. MG is based on a hierarchical decomposition of computational
7924 kernels on multiple grids. For low accuracy calculations, appropriate
7925 for molecular dynamics, a sequential implementation is as fast or
7926 faster than particle mesh Ewald (PME). Our parallel implementation is
7927 more scalable than PME. The method can be combined with multiple time
7928 stepping integrators to produce a powerful simulation protocol for
7929 simulation of biological molecules and other materials. The parallel
7930 implementation is tested on both a Linux cluster with Myrinet
7931 interconnect and a shared memory computer. It is available as
7932 open-source at http://protomol.sourceforge.net. An auxiliary tool
7933 allows the automatic selection of optimal parameters for MG, and is
7934 available at http://mdsimaid.cse.nd.edu. (c) 2005 Elsevier Inc. All
7935 rights reserved.
7936 0743-7315}
7939 @Article{Crocker2005a,
7940 author = {M. S. Crocker and S. S. Hampton and T. Matthey and J. A. Izaguirre},
7941 title = {MDSIMAID: Automatic parameter optimization in fast electrostatic algorithms},
7942 journal = {J. Comput. Chem.},
7943 volume = {26},
7944 year = {2005},
7945 pages = {1021-1031},
7946 OPTabstract = {MDSIMAID is a recommender system that optimizes parallel Particle Mesh
7947 Ewald (PME) and both sequential and parallel multigrid (MG) summation
7948 fast electrostatic solvers. MDSIMAID optimizes the running time or
7949 parallel scalability of these methods within a given error tolerance.
7950 MDSIMAID performs a run time constrained search on the parameter space
7951 of each method starting from semiempirical performance models.
7952 Recommended parameters are presented to the user. MDSIMAID'S
7953 optimization of MG leads to configurations that are up to 14 times
7954 faster or 17 times more accurate than published recommendations.
7955 Optimization of PME can improve its parallel scalability, making it run
7956 twice as fast in parallel in our tests. MDSIMAID and its Python source
7957 code are accessible through a Web portal located at
7958 http://mdsimaid.cse.nd.edu. (c) 2005 Wiley Periodicals, Inc.
7959 0192-8651}
7962 @Article{Germain2005a,
7963 author = {R. S. Germain and Y. Zhestkov and M. Eleftheriou and A. Rayshubskiy and F. Suits and T. J. C. Ward and B. G. Fitch},
7964 title = {Early performance data on the Blue Matter molecular simulation framework},
7965 journal = {IBM J. Res. Dev.},
7966 volume = {49},
7967 year = {2005},
7968 pages = {447-455},
7969 OPTabstract = {Blue Matter is the application framework being developed in conjunction
7970 with the scientific portion of the IBM Blue Gene(&REG;) project. We
7971 describe the parallel decomposition currently, being used to target the
7972 Blue Gene/L machine and discuss the application-based trace tools used
7973 to analyze the performance of the application. We also present the
7974 resuits of early performace studies, including a comparison of the
7975 performance of the Ewald and the particle-particle particle-mesh (P3ME)
7976 methods, compare the measured performance of some key collective
7977 operations with the limitations imposed by the hardware, and discuss
7978 some future directions for research.
7979 0018-8646}
7982 @Article{Peter2002a,
7983 author = {C. Peter and W. F. van Gunsteren and P. H. Hunenberger},
7984 title = {Solving the Poisson equation for solute-solvent systems using fast Fourier transforms},
7985 journal = {J. Chem. Phys.},
7986 volume = {116},
7987 year = {2002},
7988 pages = {7434-7451},
7989 OPTabstract = {An iterative algorithm based on fast Fourier transforms is proposed to
7990 solve the Poisson equation for systems of heterogeneous permittivity
7991 (e.g., solute cavity in a solvent) under periodic boundary conditions.
7992 The method makes explicit use of the dipole-dipole interaction tensor,
7993 and is thus easily generalizable to arbitrary forms of electrostatic
7994 interactions (e.g., Coulomb's law with straight or smooth cutoff
7995 truncation). The convergence properties of the algorithm and the
7996 influence of various model parameters are investigated in detail, and a
7997 set of appropriate values for these parameters is determined. The
7998 algorithm is further tested by application to three types of systems (a
7999 single spherical ion, two spherical ions, and small biomolecules), and
8000 comparison with analytical results (single ion) and with results
8001 obtained using a finite-difference solver under periodic boundary
8002 conditions. The proposed algorithm performs very well in terms of
8003 accuracy and convergence properties, with an overall speed comparable
8004 in the current implementation to that of a typical finite-difference
8005 solver. Future developments and applications of the algorithm will
8006 include: (i) the assessment of periodicity- and cutoff-induced
8007 artifacts in explicit-solvent simulations; (ii) the design of new
8008 electrostatic schemes for explicit-solvent simulations mimicking more
8009 accurately bulk solution; (iii) a faster evaluation of solvation free
8010 energies based on continuum electrostatics in cases where
8011 periodicity-induced artifacts can be neglected. (C) 2002 American
8012 Institute of Physics.
8013 0021-9606}
8016 @Article{Beckers1998a,
8017 author = {J. V. L. Beckers and C. P. Lowe and S. W. De Leeuw},
8018 title = {An iterative PPPM method for simulating Coulombic systems on distributed memory parallel computers},
8019 journal = {Mol. Simul.},
8020 volume = {20},
8021 year = {1998},
8022 pages = {369-383},
8023 OPTabstract = {We describe results obtained from a new implementation of Hockney's
8024 Particle-Particle Particle-Mesh (PPPM) method for evaluation of Coulomb
8025 energies and forces in simulations of charged particles. Rather than
8026 taking the usual approach, solving Poisson's equation by means of a
8027 Fourier transformation, we use an iterative Poisson solver. In a
8028 molecular dynamics (MD) simulation the solution from the previous
8029 time-step provides a good starting point for the next solution. This
8030 reduces the number of iterations per time-step to acceptable values.
8031 The iterative scheme has a complexity O(N), and, in contrast with the
8032 Fourier transform based approach, it is easily implemented on a
8033 parallel architecture with a minimum of communication overhead.
8034 We examine the origin of the errors in the algorithm and find that
8035 reasonable accuracies in the Coulomb interaction can best be attained
8036 by making the charge density profile as smooth as possible. This
8037 involves spreading the particle charges over a large number of grid
8038 points. Assigning these charges then becomes the most time consuming
8039 part of the algorithm. We show how we can then gain a considerable
8040 saving in computing time by employing a diffusion equation as a charge
8041 spreading mechanism.
8042 The effect of employing the algorithm with an accuracy less than that
8043 typically tolerated in an Ewald summation is studied by computing, from
8044 an MD simulation of silica, quantities that are sensitive to the long
8045 range part of the Coulomb interaction. These results are compared to
8046 full Ewald sum reference simulations and found to be within the
8047 statistical error.
8048 0892-7022}
8051 @Article{Meloni2007,
8052 author = {Simone Meloni and Mario Rosati},
8053 title = {Efficient partilce labeling in atomistic simulations},
8054 journal = {J. Chem. Phys.},
8055 year = {2007},
8056 volume = 126,
8057 pages = 121102
8060 @InProceedings{Clark91,
8061 author = "T.W. Clark and J. Andrew McCammon and L. Ridgway Scott",
8062 title = "Parallel Molecular Dynamics",
8063 editor = "J. Dongarra {\em et al.}",
8064 booktitle ="Proc. Fifth SIAM Conf. on Parallel Proc. for Sci. Comp.",
8065 year = 1991,
8066 pages = "338--344",
8067 publisher = "SIAM",
8068 address = "Philadelphia"
8071 @Article{Fitch03,
8072 author = "B.G. Fitch and R.S. Germain and M. Mendell and J. Pitera
8073 and M. Pitman and A. Rayshubskiy and Y. Sham and
8074 F. Suits and W. Swope and T.J.C. Ward and Y. Zhestkov
8075 and R. Zhou",
8076 title = "Blue Matter, an application framework for molecular simulation on Blue Gene",
8077 journal = "Journal of Parallel and Distributed Computing",
8078 volume = "63",
8079 year = {2003},
8080 pages = "759--773",
8083 @Article{Nelson96,
8084 author = "M.T. Nelson and W. Humphrey and A. Gursoy and A. Dalke
8085 and L.V. Kalé and R.D. Skeel and K. Schulten",
8086 title = "NAMD: a Parallel, Object-Oriented Molecular Dynamics Program",
8087 journal = "International Journal of High Performance Computing Applications",
8088 volume = "10",
8089 year = {1996},
8090 pages = "251--268",
8093 @Article{Jorgensen1996,
8094 author = {W. L. Jorgensen and D. S. Maxwell and J. Tirado-Rives},
8095 title = {Development and Testing of the OPLS All-Atom Force Field on Conformational Energetics and Properties of Organic Liquids},
8096 journal = BTjacs,
8097 year = 1996,
8098 volume = 118,
8099 pages = {11225--11236}
8102 @article{Kutzner2007a,
8103 author = {Carsten Kutzner and David van der Spoel and Martin Fechner and Erik
8104 Lindahl and Udo W. Schmitt and Bert L. de Groot and Helmut Grubmuller},
8105 title = {Speeding up parallel GROMACS on high-latency networks},
8106 journal = BTjcc,
8107 year = {2007},
8108 volume = {28},
8109 pages = {2075--2084},
8113 @article{Rhee2004a,
8114 author = {Young Min Rhee and Eric J. Sorin and Guha Jayachandran and Erik Lindahl
8115 and Vijay S. Pande},
8116 title = {Simulations of the role of water in the protein- folding mechanism},
8117 journal = BTpnas,
8118 year = {2004},
8119 volume = {101},
8120 pages = {6456--6461},
8125 @Article{Hess2008a,
8126 author = {B. Hess},
8127 title = {{P-LINCS}: A parallel linear constraint solver for molecular simulation},
8128 journal = BTjctc,
8129 year = 2007,
8130 volume = 4,
8131 pages = {116--122}
8134 @Article{Harmandaris2007,
8135 author = {Vagelis A. Harmandaris and Dirk Reith and Nico F. A. van der Vegt and Kurt Kremer},
8136 title = {Comparison Between Coarse-Graining Models for Polymer Systems: Two Mapiing Schemes for Polystyrene},
8137 journal = {Macromolecules},
8138 year = 2007,
8139 volume = {208},
8140 pages = {2109--2120}
8143 @Article{Liem1991,
8144 author = {S. Y. Liem and D. Brown and J. H. R. Clarke},
8145 title = {Molecular dynamics simulations on distributed memory machines},
8146 journal = {Comput. Phys. Commun.},
8147 year = 1991,
8148 volume = 67,
8149 number = 2,
8150 pages = {261--267}
8153 @Article{Long05,
8154 author = {S. Long and E. B. Campbell and R. MacKinnon},
8155 title = {Crystal Structure of a Mammalian Voltage-dependent Shaker Family K$^+$ Channel},
8156 journal = {Science},
8157 year = 2005,
8158 volume = 309,
8159 pages = {897--903}
8162 @Article{Holian95,
8163 author = {Brad Lee Holian and Arthur F. Voter and Ramon Ravelo},
8164 title = {{Thermostatted molecular dynamics: How to avoid the Toda demon hidden in Nos{\'e}-Hoover dynamics}},
8165 journal = {Phys. Rev. E},
8166 year = 1995,
8167 volume = 52,
8168 number = 3,
8169 pages = {2338--2347}
8172 @Article{Weerasinghe2003,
8173 author = {Samantha Weerasinghe and Paul E. Smith},
8174 title = {{A Kirkwood-Buff derived force field for sodium chloride in water}},
8175 journal = BTjcp,
8176 year = 2003,
8177 volume = 119,
8178 number = 21,
8179 pages = {11342--11349}
8182 @InProceedings{Bowers2006,
8183 author = {Kevin J. Bowers and Edmond Chow and Huafeng Xu and Ron O. Dror and Michael P. Eastwood and Brent A. Gregersen and John L. Klepeis and Istvan Kolossvary and Mark A. Moraes and Federico D. Sacerdoti and John K. Salmon and and Yibing Shan and David E. Shaw},
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8185 booktitle = {ACM/IEEE SC 2006 Conference (SC'06)},
8186 pages = 43,
8187 year = 2006,
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8526 title = {{GROMACS} 4.5: a high-throughput and highly parallel open source molecular simulation toolkit},
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8528 number = {7},
8529 pages = {845-854},
8530 year = {2013},
8531 doi = {10.1093/bioinformatics/btt055},
8532 abstract ={Motivation: Molecular simulation has historically been a low-throughput technique, but faster computers and increasing amounts of genomic and structural data are changing this by enabling large-scale automated simulation of, for instance, many conformers or mutants of biomolecules with or without a range of ligands. At the same time, advances in performance and scaling now make it possible to model complex biomolecular interaction and function in a manner directly testable by experiment. These applications share a need for fast and efficient software that can be deployed on massive scale in clusters, web servers, distributed computing or cloud resources.Results: Here, we present a range of new simulation algorithms and features developed during the past 4 years, leading up to the GROMACS 4.5 software package. The software now automatically handles wide classes of biomolecules, such as proteins, nucleic acids and lipids, and comes with all commonly used force fields for these molecules built-in. GROMACS supports several implicit solvent models, as well as new free-energy algorithms, and the software now uses multithreading for efficient parallelization even on low-end systems, including windows-based workstations. Together with hand-tuned assembly kernels and state-of-the-art parallelization, this provides extremely high performance and cost efficiency for high-throughput as well as massively parallel simulations.Availability: GROMACS is an open source and free software available from http://www.gromacs.org.Contact: erik.lindahl@scilifelab.seSupplementary information: Supplementary data are available at Bioinformatics online.},
8533 URL = {http://bioinformatics.oxfordjournals.org/content/29/7/845.abstract},
8534 eprint = {http://bioinformatics.oxfordjournals.org/content/29/7/845.full.pdf+html},
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8623 journal = BTjcc,
8624 volume = {21},
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8626 publisher = {John Wiley & Sons, Inc.},
8627 issn = {1096-987X},
8628 url = {http://dx.doi.org/10.1002/(SICI)1096-987X(20000130)21:2<105::AID-JCC3>3.0.CO;2-P},
8629 doi = {10.1002/(SICI)1096-987X(20000130)21:2<105::AID-JCC3>3.0.CO;2-P},
8630 pages = {105--120},
8631 keywords = {CHARMM, force field, molecular dynamics, parametrization, DNA, RNA},
8632 year = {2000},
8635 @incollection {Pall2015,
8636 author = {P{\'a}ll, Szil{\'a}rd and Abraham, Mark James and Kutzner, Carsten and Hess, Berk and Lindahl, Erik},
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8638 ons with {GROMACS} },
8639 booktitle = {Solving Software Challenges for Exascale },
8640 editor = { Markidis, Stephano and Laure, Erwin },
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8650 title = { {GROMACS}: High performance molecular simulations through multi-level parallelism from laptops to supercomputers },
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8790 @Article{Robertson2015a,
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