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Mapping Adaptive Particle Filters to Heterogeneous Reconfigurable Systems

机译:将自适应粒子滤波器映射到异构可重构系统

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This article presents an approach for mapping real-time applications based on particle filters (PFs) to heterogeneous reconfigurable systems, which typically consist of multiple FPGAs and CPUs. A method is proposed to adapt the number of particles dynamically and to utilise runtime reconfigurability of FPGAs for reduced power and energy consumption. A data compression scheme is employed to reduce communication overhead between FPGAs and CPUs. A mobile robot localisation and tracking application is developed to illustrate our approach. Experimental results show that the proposed adaptive PF can reduce up to 99% of computation time. Using runtime reconfiguration, we achieve a 25% to 34% reduction in idle power. A 1U system with four FPGAs is up to 169 times faster than a single-core CPU and 41 times faster than a 1U CPU server with 12 cores. It is also estimated to be 3 times faster than a system with four GPUs.
机译:本文提出了一种将基于粒子过滤器(PF)的实时应用程序映射到异构可重配置系统的方法,该系统通常由多个FPGA和CPU组成。提出了一种方法,可以动态地调整粒子的数量,并利用FPGA的运行时可重新配置性来降低功耗和能耗。采用数据压缩方案来减少FPGA与CPU之间的通信开销。开发了一个移动机器人本地化和跟踪应用程序来说明我们的方法。实验结果表明,提出的自适应PF可以减少多达99%的计算时间。使用运行时重新配置,我们可以将空闲功率降低25%到34%。具有四个FPGA的1U系统比单核CPU快169倍,比具有12核的1U CPU服务器快41倍。据估计,它比具有四个GPU的系统快3倍。

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