分子动力学模拟通过GPU视频游戏技术。

Journal of molecular biochemistry Pub Date : 2014-01-01 Epub Date: 2014-06-30
Styliani Loukatou, Louis Papageorgiou, Paraskevas Fakourelis, Arianna Filntisi, Eleftheria Polychronidou, Ioannis Bassis, Vasileios Megalooikonomou, Wojciech Makałowski, Dimitrios Vlachakis, Sophia Kossida
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引用次数: 0

摘要

生物信息学是关注计算机技术在生物信息管理中的应用的科学领域。多年来,生物信息学应用已被用于存储、处理和整合生物和遗传信息,使用了广泛的方法。分子动力学(MD)是用来理解原子和分子物理运动的最新颖的技术之一。MD是一种模拟原子和分子在一定条件下的物理运动的计算机方法。这已经成为一项国家战略技术,现在在许多精确科学领域,如化学、生物、物理和医学中发挥着关键作用。由于它们的复杂性,MD计算可能需要大量的计算机内存和时间,因此它们的执行一直是一个大问题。尽管计算成本巨大,但分子动力学已经使用带有中央存储单元(CPU)的传统计算机来实现。图形处理单元(GPU)计算技术最初的设计目标是通过在屏幕等帧缓冲区中快速创建和显示图像来改进视频游戏。结合并行计算的混合GPU-CPU实现是一种执行广泛计算的新技术。gpu已经被提出并用于加速许多科学计算,包括MD模拟。在这里,我们描述了最初作为视频游戏开发的新方法,以及它们现在如何应用于MD模拟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Molecular dynamics simulations through GPU video games technologies.

Molecular dynamics simulations through GPU video games technologies.

Molecular dynamics simulations through GPU video games technologies.

Bioinformatics is the scientific field that focuses on the application of computer technology to the management of biological information. Over the years, bioinformatics applications have been used to store, process and integrate biological and genetic information, using a wide range of methodologies. One of the most de novo techniques used to understand the physical movements of atoms and molecules is molecular dynamics (MD). MD is an in silico method to simulate the physical motions of atoms and molecules under certain conditions. This has become a state strategic technique and now plays a key role in many areas of exact sciences, such as chemistry, biology, physics and medicine. Due to their complexity, MD calculations could require enormous amounts of computer memory and time and therefore their execution has been a big problem. Despite the huge computational cost, molecular dynamics have been implemented using traditional computers with a central memory unit (CPU). A graphics processing unit (GPU) computing technology was first designed with the goal to improve video games, by rapidly creating and displaying images in a frame buffer such as screens. The hybrid GPU-CPU implementation, combined with parallel computing is a novel technology to perform a wide range of calculations. GPUs have been proposed and used to accelerate many scientific computations including MD simulations. Herein, we describe the new methodologies developed initially as video games and how they are now applied in MD simulations.

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