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首页> 外文期刊>Future generation computer systems >ASIP acceleration for virtual-to-physical address translation on RDMA-enabled FPGA-based network interfaces
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ASIP acceleration for virtual-to-physical address translation on RDMA-enabled FPGA-based network interfaces

机译:在基于RDMA的基于FPGA的网络接口上实现虚拟地址到物理地址转换的ASIP加速

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摘要

We developed a point-to-point, low latency, 3D torus Network Controller integrated in an FPGA-based PCIe board which implements a Remote Direct Memory Access (RDMA) communication protocol. RDMA requires ability to directly access the remote node application memory with minimal OS or CPU intervention. To this purpose, a key element is the design of a direct memory writing mechanism to address the destination buffers; on Virtual Memory supporting OSes this corresponds to a number of page-segmented DMAs. To minimally affect overall performance, mechanisms with lowest possible latency are needed for either Virtual-to-Physical address translation and registered buffers list scanning. In a first implementation these tasks were set on a soft-core μC on the FPGA, leading to a 1.6 μs latency to process a single packet and limiting the peak bandwidth. As a second trial, we present an accelerated version for these time-critical network functions exploiting an application-specific processor (ASIP) designed using a re-targetable ASIP development toolsuite that allows architectural exploration. Benchmark results for Buffer Search and Virtual-to-Physical tasks on the ASIP show improvements for latency with up to ten times lower cycles cost compared with the soft-core μC.
机译:我们开发了集成在基于FPGA的PCIe板上的点对点,低延迟,3D环面网络控制器,该板实现了远程直接内存访问(RDMA)通信协议。 RDMA需要能够以最少的OS或CPU干预直接访问远程节点应用程序内存。为此,关键要素是直接存储器写入机制的设计,以寻址目标缓冲区。在支持OS的虚拟内存上,这对应于许多分页的DMA。为了将对整体性能的影响降到最低,虚拟到物理地址转换和已注册缓冲区列表扫描都需要具有尽可能低延迟的机制。在第一个实现中,这些任务是在FPGA的软核μC上设置的,导致处理单个数据包的延迟为1.6μs,并限制了峰值带宽。作为第二项试验,我们为这些时间紧迫的网络功能提供了一个加速版本,该版本利用专用处理器(ASIP)进行设计,该专用处理器使用可重新定向的ASIP开发工具套件进行设计,从而可以进行架构探索。 ASIP上的“缓冲区搜索”和“虚拟到物理”任务的基准测试结果显示,与软核μC相比,延迟得到了改善,周期成本降低了十倍。

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