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Reconfigurable and adaptive photonic networks for high-performance computing systems

机译:用于高性能计算系统的可重构和自适应光子网络

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As feature sizes decrease to the submicrometer regime and clock rates increase to the multigigahertz range, the limited bandwidth at higher bit rates and longer communication distances in electrical interconnects will create a major bandwidth imbalance in future high-performance computing (HPC) systems. We explore the application of an optoelectronic interconnect for the design of flexible, high-bandwidth, reconfigurable and adaptive interconnection architectures for chip-to-chip and board-to-board HPC systems. Reconfigurability is realized by interconnecting arrays of optical transmitters, and adaptivity is implemented by a dynamic bandwidth reallocation (DBR) technique that balances the load on each communication channel. We evaluate a DBR technique, the lockstep (LS) protocol, that monitors traffic intensities, reallocates bandwidth, and adapts to changes in communication patterns. We incorporate this DBR technique into a detailed discrete-event network simulator to evaluate the performance for uniform, nonuniform, and permutation communication patterns. Simulation results indicate that, without reconfiguration techniques being applied, optical based system architecture shows better performance than electrical interconnects for uniform and nonuniform patterns; with reconfiguration techniques being applied, the dynamically reconfigurable optoelectronic interconnect provides much better performance for all communication patterns. Based on the performance study, the reconfigured architecture shows 30percent-50percent increased throughput and 50percent-75percent reduced network latency compared with HPC electrical networks.
机译:随着特征尺寸减小到亚微米范围,时钟速率增加到数千兆赫兹范围,电互连中更高比特率下的有限带宽和更长的通信距离将在未来的高性能计算(HPC)系统中造成严重的带宽失衡。我们探索光电互连的应用,以设计用于芯片对芯片和板对板HPC系统的灵活,高带宽,可重新配置和自适应互连架构。可重配置性是通过互连光发射器阵列实现的,而适应性则是通过动态带宽重新分配(DBR)技术实现的,该技术可平衡每个通信信道上的负载。我们评估了一种DBR技术,即锁步(LS)协议,该技术可以监视流量强度,重新分配带宽并适应通信模式的变化。我们将此DBR技术结合到详细的离散事件网络模拟器中,以评估统一,非均匀和置换通信模式的性能。仿真结果表明,在不应用重新配置技术的情况下,基于光学的系统体系结构对于均匀和不均匀的图形而言,其性能优于电互连。通过应用重新配置技术,动态可重新配置的光电互连为所有通信模式提供了更好的性能。根据性能研究,与HPC电气网络相比,重新配置的体系结构显示吞吐量提高了30%-50%,网络等待时间降低了50%-75%。

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