专门用于多代理仿真的多处理器体系结构

Christian Schäck, W. Heenes, R. Hoffmann
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引用次数: 4

摘要

提出了两种基于大规模并行全局元胞自动机(GCA)模型的加速多智能体世界仿真的新多处理器体系结构。GCA模型适用于描述和模拟不同的多智能体世界。设计和实现的体系结构主要由一组处理器(NIOS II)和一个网络组成。多处理器系统允许通过编程以灵活的方式实现,从而在同一体系结构上模拟不同的行为。在FPGA上实现了多达16个处理器的两种架构。第一种体系结构使用硬件哈希函数来减少总体模拟时间,但缺乏可伸缩性。第二个体系结构使用代理内存和单元格字段内存。这提高了可伸缩性,并进一步提高了性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiprocessor Architectures Specialized for Multi-agent Simulation
Two new multiprocessor architectures to accelerate the simulation of multi-agent worlds based on the massively parallel GCA (Global Cellular Automata) model are presented. The GCA model is suited to describe and simulate different multi-agent worlds. The designed and implemented architectures mainly consist of a set of processors (NIOS II) and a network. The multiprocessor systems allow the implementation in a flexible way through programming, thus simulating different behaviors on the same architecture. Two architectures with up to 16 processors were implemented on an FPGA. The first architecture uses hardware hash functions in order to reduces the overall simulation time, but lacks scalability. The second architecture uses an agent memory and a cell field memory. This improves the scalability and further increases the performance.
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