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SaHNoC: an optimal energy efficient hybrid networks-on-chip architecture

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Abstract

This paper proposes an energy-efficient hybrid Networks-on-Chip architecture called SaHNoC, which is more self adaptive with respect to selection of Wi-Fi positions in a Mesh topology. In comparison with wired on-chip interconnect NoC, wireless interconnect NoC offers a promising performance with respect to communication speed. However, the wireless switch occupies a larger area and has higher power-energy consumption than the wired switch. In this paper, we develop an optimal energy-efficient wire-wireless NoC structure called Hybrid NoC. The proposed hybrid NoC approach explores the self-adaptive technique for the selection of wireless switching positions in a suitable location against topology with respect to network diameter and average hop count. The effectiveness of the proposed SaHNoC is validated with a modified version of Booksim 2.0 in mutual with Orion 3.0.

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References

  1. Benini L, De Micheli G (2002) Networks on chips: a new SoC paradigm. IEEE Comput 35(1):70–78

    Article  Google Scholar 

  2. Kumar S, Jantsch A, Soininen JP, Forsell M, Millberg M, Oberg J, Tiensyrja K, Hemani A (2002) A network on chip architecture and design methodology, In: Proc. ISVLSI, pp 117–124

  3. Dally WJ, Towles B (2001) Route packets, not wires: on-chip interconnection networks, In: Proc. DAC, pp 684–689

  4. Pande PP, Grecu C, Jones M, Ivanov A, Saleh R (2005) Performance evaluation and design trade-offs for network-on-chip interconnect architectures. IEEE Trans Comput 54(8):1025–1040

    Article  Google Scholar 

  5. Yu X, Sah SP, Deb S, Pande PP, Belzer B, Deukhyoun H (2011) A wideband body-enabled millimeter-wave transceiver for wireless network-on-chip, In: Proc. IEEE MWSCAS pp 1–4

  6. Dally WJ, Towles B (2004) Principles and Practices of Interconnection Networks, In: Morgan Kaufmann Publishers, San Francisco, CA

  7. Deb S, Ganguly A, Pande PP, Belzer B, Heo D (2012) Wireless NoC as interconnection backbone for multicore chips: promises and challenges. IEEE J Emer Sel Top Circ Syst 2(2):228–239

    Article  Google Scholar 

  8. Deb S, Chang K, Yu X, Sah SP, Cosic M, Ganguly A, Pande PP, Belzer B, Heo D (2013) Design of an energy efficient CMOS compatible NoC architecture with millimeter-wave wireless interconnects. IEEE Trans Comput 62(12):2382–2396

    Article  MathSciNet  Google Scholar 

  9. Wang C, Hu WH, Bagherzadeh N (2011) A wireless network-on-chip design for multicore platforms, In: Proceedings of 19th International Euromicro Conference on Parallel, Distributed and Network-Based Processing (PDP), pp 409–416

  10. Lee SB, Tam SW, Pefkianakis I, AL ET (2009) A scalable micro wireless interconnect structure for cmps, In: Proceedings of the 15th Annual International Conference on Mobile Computing and Networking, pp 217–228

  11. Dai P, Chen J, Zaho Y, Lai YH (2015) A study of a wire-wireless hybrid NoC architecture with an energy-proportional multicast scheme for energy efficiency. Comput Electr Eng 45(2):402–416

    Article  Google Scholar 

  12. Rad F, Reshadi M, Khademzadeh A (2020) Flow control and scheduling mechanism to improve network performance in wireless NoC. IET Commun 14(14):2231–2239

    Article  Google Scholar 

  13. Devanathan M, Ranganathan V, Sivakumar P (2020) Congestion-aware wireless network-on-chip for high-speed communication. Automatika 61(1):92–98

    Article  Google Scholar 

  14. Meir A, Moon JW (1975) Relations between packing and covering number of a tree. Pac J Math 67(1):225–233

    Article  MathSciNet  MATH  Google Scholar 

  15. Slater PJ (1976) R-domination in graphs. J Assoc Comp Mach 23(3):446–450

    Article  MATH  Google Scholar 

  16. Lichtenstein D (1982) Planar satisfiability and its uses. SIAM J Comput 11(1):329–343

    Article  MathSciNet  MATH  Google Scholar 

  17. Davila R, Fast C, Henning MA, Kenter F (2017) Lower bounds on the distance domination number of a graph. Contrib Discrete Math 12(2):446–450

    MathSciNet  MATH  Google Scholar 

  18. Xiang W, Wang G, Pickering M, Zhang Y (2016) Big video data for light-field-based 3D telemedicine. IEEE Netw 30(3):30–38

    Article  Google Scholar 

  19. Alagarsamy A, Mahilmaran S, Gopalakrishnan L, Ko SB (2022) FRDS: an efficient unique on-Chip interconnection network architecture. Integration 87:90–103

    Article  Google Scholar 

  20. Gkelias A, Dohler M, Friderikos V (1985) Throughput analysis for persistent CSMA systems. IEEE Trans Commun 33(3):627–638

    Google Scholar 

  21. Takagi H, Kleinrock L, Friderikos V, Hamid Aghvami A (2005) Average packet delay of CSMA/CA with finite user population. IEEE Commun Lett 9(3):273–275

    Article  Google Scholar 

  22. Deb S, Chang K, Yu X, Sah SP, Cosic M, Ganguly A et al (2013) Design of an energy efficient CMOS compatible NoC architecture with millimeter-wave wireless interconnects. IEEE Trans Comp 62(12):2382–2396

    Article  MathSciNet  Google Scholar 

  23. Jiang N, Balfour J, Becker DU, Towles B, Dally WJ, Michelogiannakis G, Kim J (2013) A detailed and flexible cycle-accurate Network-on-Chip simulator, In: Proc. ISPASS, pp 86–96

  24. Kahng A, Lin B, Nath S (2015) ORION3.0: a comprehensive NoC router estimation tool. IEEE Embed Syst Lett 7(2):41–45

    Article  Google Scholar 

  25. Manuel Malumbres P, Duato J, Torrellas J (2002) An efficient implementation of tree-based multicast routing for distributed shared-memory multiprocessors, In: Proceedings of SPDP’96: 8th IEEE Symposium on Parallel and Distributed Processing. pp 17–22

  26. Masoumeh E et al (2012) Path-based partitioning methods for 3D networks-on-chip with minimal adaptive routing. IEEE Trans Comput 63(3):718–733

    MathSciNet  MATH  Google Scholar 

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Acknowledgements

The first author thanks DST-FIST for funding the lab facility for supporting this research under grant number SR/FST/ET-II/2019/450.

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A. Alagrasamy—Conceptualization, Methodology, Software, Investigation, Writing—Original Draft, Funding acquisition, Project administration S. Mahilmaran—Methodology, Formal analysis, Writing—Original Draft L. Gopalakrishnan—Software, Resources, Supervision S. B.  Ko—Investigation, Resources, Supervision, Project administration.

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Correspondence to Aravindhan Alagarsamy.

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Alagarsamy, A., Mahilmaran, S., Gopalakrishnan, L. et al. SaHNoC: an optimal energy efficient hybrid networks-on-chip architecture. J Supercomput 79, 6538–6559 (2023). https://doi.org/10.1007/s11227-022-04910-9

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