Title :
Holistic comparison of optical routers for chip multiprocessors
Author :
Ye, Yaoyao ; Wu, Xiaowen ; Xu, Jiang ; Zhang, Wei ; Nikdast, Mahdi ; Wang, Xuan
Author_Institution :
Dept. of Electron. & Comput. Eng., Hong Kong Univ. of Sci. & Technol., Hong Kong, China
Abstract :
Network-on-chip (NoC) can improve the performance, power efficiency, and scalability of chip multiprocessors (CMPs). However, traditional NoCs using metallic interconnects consume a significant amount of power to deliver high communication bandwidth required in the near future. Optical NoCs are based on CMOS-compatible optical waveguides and optical routers, and promise significant bandwidth and power advantages. In this work, we review different designs of 5×5 and 4×4 optical routers for mesh or torus-based optical NoCs, and compare them for cost of optical resources and optical power loss. Besides, we use a 8×8 mesh-based optical NoC as a case study and analyze the thermal-induced power overhead while using different optical routers. Results show that the number of switching stages in an optical link directly affects the total optical power loss under thermal variations. By using passive-routing optical routers, the maximum number of switching stages in a XY-routing path is minimized to three, and the thermal-induced power overhead in the optical NoC is less than the matched networks using other routers.
Keywords :
CMOS digital integrated circuits; integrated circuit interconnections; integrated circuit metallisation; microprocessor chips; multiprocessing systems; network routing; network-on-chip; optical logic; optical waveguides; performance evaluation; power aware computing; CMOS-compatible optical waveguides; CMP; chip multiprocessors; communication bandwidth; holistic comparison; matched networks; mesh-based optical NoC; metallic interconnects; network-on-chip; optical link; optical power loss; optical resources; passive-routing optical routers; performance improvement; power effciency; routing path; scalability; switching stages; thermal variations; thermal-induced power overhead analysis; torus-based optical NoC; Optical device fabrication; Optical fiber networks; Optical losses; Optical sensors; Optical switches; Optical waveguides; Chip multiprocessor; optical network-on-chip; optical router;
Conference_Titel :
Anti-Counterfeiting, Security and Identification (ASID), 2012 International Conference on
Conference_Location :
Taipei
Print_ISBN :
978-1-4673-2144-0
Electronic_ISBN :
2163-5048
DOI :
10.1109/ICASID.2012.6325348