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首页> 外文期刊>Information Sciences: An International Journal >RDMA-driven MongoDB: An approach of RDMA enhanced NoSQL paradigm for large-Scale data processing
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RDMA-driven MongoDB: An approach of RDMA enhanced NoSQL paradigm for large-Scale data processing

机译:RDMA驱动的MongoDB:用于大规模数据处理的RDMA增强的NoSQL范例的方法

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摘要

With the rapid development of big data and data center networks, NoSQL database has won great popularity for its excellent performance in accelerating the performance of many online and offline big data applications, such as HBase, Cassandra and MongoDB. However, due to massive and frequent Create/Update/Retrieval/Delete (CURD) operations, the traditional TCP/IP protocol stack has difficulty to provide the required request rates and response latency for the large-scale NoSQL system. For example, large-scale data migration or synchronization among multiple clusters in a data center results in competition for network bandwidth with high delay. To mitigate such transmission bottleneck, we propose an approach of RDMA-driven document NoSQL Paradigm' RDMA_Mongo, based on MongoDB. The performance of CURD operations is enhanced by one-sided Remote Direct Memory Access (RDMA) primitives (such as RDMA Read/Write) without involving the TCP/IP stack or CPU. Evaluation under RDMA-enabled network demonstrates that RDMA_Mongo significantly improves the CURD performance, compared with plain MongoDB. The results show that the average insert throughput increases by approximately 30%, the average delete throughput by over 30%, the update by up to 17% and the query throughput by 15% when facing large-scale data requests. (C) 2019 Elsevier Inc. All rights reserved.
机译:随着大数据和数据中心网络的快速发展,NoSQL数据库赢得了众多普及,以加速许多在线和离线大数据应用的性能,例如HBase,Cassandra和MongoDB。但是,由于大规模和频繁的创建/更新/检索/删除(CURD)操作,传统的TCP / IP协议栈难以为大规模NOSQL系统提供所需的请求速率和响应延迟。例如,数据中心中多个集群之间的大规模数据迁移或同步导致网络带宽的竞争高延迟。为了减轻这种传输瓶颈,我们提出了一种基于MongoDB的RDMA驱动文件NoSQL Paradigm'RDMA_Mongo的方法。通过单面远程直接内存访问(如RDMA读/写)而不涉及TCP / IP堆栈或CPU,通过单侧远程直接进入内存访问(如RDMA读/写)增强了凝乳操作的性能。支持RDMA的网络下的评估表明,与普通MongoDB相比,RDMA_Mongo显着提高了凝乳性能。结果表明,平均插入吞吐量增加了大约30%,平均删除吞吐量超过30%,在面向大规模数据请求时,高达17%的更新达到17%,吞吐量为15%。 (c)2019 Elsevier Inc.保留所有权利。

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