DocumentCode
3663940
Title
PIM-enabled instructions: A low-overhead, locality-aware processing-in-memory architecture
Author
Junwhan Ahn;Sungjoo Yoo;Onur Mutlu;Kiyoung Choi
Author_Institution
Seoul National University, Korea
fYear
2015
fDate
6/1/2015 12:00:00 AM
Firstpage
336
Lastpage
348
Abstract
Processing-in-memory (PIM) is rapidly rising as a viable solution for the memory wall crisis, rebounding from its unsuccessful attempts in 1990s due to practicality concerns, which are alleviated with recent advances in 3D stacking technologies. However, it is still challenging to integrate the PIM architectures with existing systems in a seamless manner due to two common characteristics: unconventional programming models for in-memory computation units and lack of ability to utilize large on-chip caches. In this paper, we propose a new PIM architecture that (I) does not change the existing sequential programming models and (2) automatically decides whether to execute PIM operations in memory or processors depending on the locality of data. The key idea is to implement simple in-memory computation using compute-capable memory commands and use specialized instructions, which we call PIM-enabled instructions, to invoke in-memory computation. This allows PIM operations to be interoperable with existing programming models, cache coherence protocols, and virtual memory mechanisms with no modification. In addition, we introduce a simple hardware structure that monitors the locality of data accessed by a PIM-enabled instruction at runtime to adaptively execute the instruction at the host processor (instead of in memory) when the instruction can benefit from large on-chip caches. Consequently, our architecture provides the illusion that PIM operations are executed as if they were host processor instructions. We provide a case study of how ten emerging data-intensive workloads can benefit from our new PIM abstraction and its hardware implementation. Evaluations show that our architecture significantly improves system performance and, more importantly, combines the best parts of conventional and PlM architectures by adapting to data locality of applications.
Keywords
"Engines","Bandwidth","Handheld computers"
Publisher
ieee
Conference_Titel
Computer Architecture (ISCA), 2015 ACM/IEEE 42nd Annual International Symposium on
Type
conf
DOI
10.1145/2749469.2750385
Filename
7284077
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