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      Spectral gap optimization of order parameters for sampling complex molecular systems

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      Proceedings of the National Academy of Sciences
      Proceedings of the National Academy of Sciences

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          Abstract

          In modern-day simulations of many-body systems, much of the computational complexity is shifted to the identification of slowly changing molecular order parameters called collective variables (CVs) or reaction coordinates. A vast array of enhanced-sampling methods are based on the identification and biasing of these low-dimensional order parameters, whose fluctuations are important in driving rare events of interest. Here, we describe a new algorithm for finding optimal low-dimensional CVs for use in enhanced-sampling biasing methods like umbrella sampling, metadynamics, and related methods, when limited prior static and dynamic information is known about the system, and a much larger set of candidate CVs is specified. The algorithm involves estimating the best combination of these candidate CVs, as quantified by a maximum path entropy estimate of the spectral gap for dynamics viewed as a function of that CV. The algorithm is called spectral gap optimization of order parameters (SGOOP). Through multiple practical examples, we show how this postprocessing procedure can lead to optimization of CV and several orders of magnitude improvement in the convergence of the free energy calculated through metadynamics, essentially giving the ability to extract useful information even from unsuccessful metadynamics runs.

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          Bond-orientational order in liquids and glasses

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            Brownian dynamics with hydrodynamic interactions

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              Hyperdynamics: Accelerated Molecular Dynamics of Infrequent Events

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                Author and article information

                Journal
                Proceedings of the National Academy of Sciences
                Proc Natl Acad Sci USA
                Proceedings of the National Academy of Sciences
                0027-8424
                1091-6490
                March 15 2016
                March 15 2016
                March 15 2016
                February 29 2016
                : 113
                : 11
                : 2839-2844
                Article
                10.1073/pnas.1600917113
                26929365
                e41b6aa0-a31a-4067-b05f-2d525abe157e
                © 2016

                Free to read

                http://www.pnas.org/preview_site/misc/userlicense.xhtml

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