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Dynamic Data Migration in Hybrid Main Memories for In-Memory Big Data Storage
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  • Dynamic Data Migration in Hybrid Main Memories for In-Memory Big Data Storage
  • Dynamic Data Migration in Hybrid Main Memories for In-Memory Big Data Storage
저자명
Mai. Hai Thanh,Park. Kyoung Hyun,Lee. Hun Soon,Kim. Chang Soo,Lee. Miyoung,Hur. Sung Jin
간행물명
ETRI journal
권/호정보
2014년|36권 6호|pp.988-998 (11 pages)
발행정보
한국전자통신연구원
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
서지반출

기타언어초록

For memory-based big data storage, using hybrid memories consisting of both dynamic random-access memory (DRAM) and non-volatile random-access memories (NVRAMs) is a promising approach. DRAM supports low access time but consumes much energy, whereas NVRAMs have high access time but do not need energy to retain data. In this paper, we propose a new data migration method that can dynamically move data pages into the most appropriate memories to exploit their strengths and alleviate their weaknesses. We predict the access frequency values of the data pages and then measure comprehensively the gains and costs of each placement choice based on these predicted values. Next, we compute the potential benefits of all choices for each candidate page to make page migration decisions. Extensive experiments show that our method improves over the existing ones the access response time by as much as a factor of four, with similar rates of energy consumption.