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Data-Parallel Algorithms for Agent-Based Model Simulation of Tuberculosis On Graphics Processing Units

机译:基于代理的数据模型模拟图形处理单元的数据并行算法

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Agent-based modeling has been recognized as a method to bridge the translational gap in integrative systems biology. However, the computational complexity of agent-based models at biologically relevant scales makes simulation impractical on traditional CPU-based serial computing. In this paper we present a series of algorithms for simulating large scale agent-based models on graphics processing units (GPUs). GPUs have recently emerged as a powerful and economical computing platform for certain applications in scientific computing. As a test case, we have implemented an agent-based model of tuberculosis. This model simulates the interaction of the human immune system in the lung with Mycobacterium tuberculosis and tracks the formation of characteristic structures called granulomas. The model uses mobile agents to represent immune cells such as T cells and macrophages, field equations representing effector chemokines, and bacteria. Algorithms were implemented and benchmarked against a CPU implementation. Our benchmarks show performance gains of over 100 for moderately sized models. This opens the possibility of efficiently simulating realistically sized models on desktop computers.
机译:基于代理的建模已经被认为是弥合综合系统生物学中平移差距的方法。然而,生物相关尺度在生物相关尺度上基于代理的模型的计算复杂性使得在传统的基于CPU的串行计算中的模拟变得不切实际。在本文中,我们提出了一系列用于在图形处理单元(GPU)上模拟基于大规模代理的模型的一系列算法。 GPU最近被出现为一个强大而经济的计算平台,用于科学计算中的某些应用。作为测试用例,我们已经实施了基于代理的结核模型。该模型模拟人免疫系统与结核分枝杆菌的相互作用,追踪形成肉芽肿的特征结构的形成。该模型使用移动剂来表示免疫细胞,例如T细胞和巨噬细胞,常规方程代表效应趋化因子和细菌。实现并反对CPU实现实现并基准测试算法。我们的基准测试显示适中大小的型号的100多个。这将打开有效地模拟桌面计算机上的现实大小模型。

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