DocumentCode
1799894
Title
Enabling Realistic Fine-Grain Voltage Scaling with Reconfigurable Power Distribution Networks
Author
Godycki, Waclaw ; Torng, Christopher ; Bukreyev, Ivan ; Apsel, Alyssa ; Batten, Christopher
Author_Institution
Sch. of Electr. & Comput. Eng., Cornell Univ., Ithaca, NY, USA
fYear
2014
fDate
13-17 Dec. 2014
Firstpage
381
Lastpage
393
Abstract
Recent work has shown that monolithic integration of voltage regulators will be feasible in the near future, enabling reduced system cost and the potential for fine-grain voltage scaling (FGVS). More specifically, on-chip switched-capacitor regulators appear to offer an attractive trade-off in terms of integration complexity, power density, power efficiency, and response time. In this paper, we use architecture-level modeling to explore a new dynamic voltage/frequency scaling controller called the fine-grain synchronization controller (FG-SYNC+). FG-SYNC+ enables improved performance and energy efficiency at similar average power for multithreaded applications with activity imbalance. We then use circuit-level modeling to explore various approaches to organizing on-chip voltage regulation, including a new approach called reconfigurable power distribution networks (RPDNs). RPDNs allow one regulator to "borrow" energy storage from regulators associated with underutilized cores resulting in improved area/power efficiency and faster response times. We evaluate FG-SYNC+ and RPDN using a vertically integrated research methodology, and our results demonstrate a 10-50% performance and 10-70% energy-efficiency improvement on the majority of the applications studied compared to no FGVS, yet RPDN uses 40% less area compared to a more traditional per-core regulation scheme.
Keywords
distribution networks; energy conservation; multi-threading; power aware computing; switched capacitor networks; system-on-chip; voltage regulators; FG-SYNC+; FGVS; RPDN; activity imbalance; architecture-level modeling; area-power efficiency; circuit-level modeling; dynamic voltage-frequency scaling controller; energy efficiency; fine-grain synchronization controller; integration complexity; multithreaded applications; on-chip switched-capacitor regulators; on-chip voltage regulation; power density; power efficiency; realistic fine-grain voltage scaling; reconfigurable power distribution networks; response time; system-on-chip; vertically integrated research methodology; voltage regulator monolithic integration; Regulators; Switches; Synchronization; System-on-chip; Time factors; Time-frequency analysis; Voltage control; DVFS; on-chip voltage regulation; power distribution networks;
fLanguage
English
Publisher
ieee
Conference_Titel
Microarchitecture (MICRO), 2014 47th Annual IEEE/ACM International Symposium on
Conference_Location
Cambridge
ISSN
1072-4451
Type
conf
DOI
10.1109/MICRO.2014.52
Filename
7011403
Link To Document