DocumentCode
2947526
Title
Hardware/software techniques for DRAM thermal management
Author
Liu, Song ; Leung, Brian ; Neckar, Alexander ; Memik, Seda Ogrenci ; Memik, Gokhan ; Hardavellas, Nikos
fYear
2011
fDate
12-16 Feb. 2011
Firstpage
515
Lastpage
525
Abstract
The performance of the main memory is an important factor on overall system performance. To improve DRAM performance, designers have been increasing chip densities and the number of memory modules. However, these approaches increase power consumption and operating temperatures: temperatures in existing DRAM modules can rise to over 95°C. Another important property of DRAM temperature is the large variation in DRAM chip temperatures. In this paper, we present our analysis collected from measurements on a real system indicating that temperatures across DRAM chips can vary by over 10°C. This work aims to minimize this variation as well as the peak DRAM temperature. We first develop a thermal model to estimate the temperature of DRAM chips and validate this model against real temperature measurements. We then propose three hardware and software schemes to reduce peak temperatures. The first technique introduces a new cache line replacement policy that reduces the number of accesses to the overheating DRAM chips. The second technique utilizes a Memory Write Buffer to improve the access efficiency of the overheated chips. The third scheme intelligently allocates pages to relatively cooler ranks of the DIMM. Our experiments show that in a high performance memory system, our schemes reduce the peak DRAM chip temperature by as much as 8.39°C over 10 workloads (5.36°C on average). Our schemes also improve performance mainly due to reduction in thermal emergencies: for a baseline system with memory bandwidth throttling scheme, the IPC is improved by as much as 15.8% (4.1% on average).
Keywords
DRAM chips; cache storage; performance evaluation; power aware computing; thermal management (packaging); DRAM chips; DRAM performance improvement; DRAM thermal management; cache line replacement policy; hardware-software techniques; memory modules; memory write buffer; power consumption; temperature measurements; thermal model; Cooling; DRAM chips; Registers; Temperature; Temperature measurement; Temperature sensors;
fLanguage
English
Publisher
ieee
Conference_Titel
High Performance Computer Architecture (HPCA), 2011 IEEE 17th International Symposium on
Conference_Location
San Antonio, TX
ISSN
1530-0897
Print_ISBN
978-1-4244-9432-3
Type
conf
DOI
10.1109/HPCA.2011.5749756
Filename
5749756
Link To Document