• Electronics Optics & Control
  • Vol. 23, Issue 10, 59 (2016)
WANG Tao, CAI Jin-yan, and ZHANG Jun-bin
Author Affiliations
  • [in Chinese]
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    DOI: 10.3969/j.issn.1671-637x.2016.10.013 Cite this Article
    WANG Tao, CAI Jin-yan, ZHANG Jun-bin. A Comprehensive Research on Self-Healing of Embryonic Hardware-Based Circuit Failures[J]. Electronics Optics & Control, 2016, 23(10): 59 Copy Citation Text show less
    References

    [3] TEMPESTI G, MANGE D, STAUFFER A, et al. The BioWall: an electronic tissue for prototyping bio-inspired systems[C]//Proceedings of the 2002 NASA/DoD Confe-rence on Evolvable Hardware, 2002: 221-230.

    [4] STAUFFER A, MANGE D, TEMPESTI G. BioWatch: a giant electronic bio-inspired watch[C]//Proceedings of the 3rd NASA/DoD Workshop on Evolvable Hardware, 2001: 185-192.

    [6] SIPPER M, SANENEZ E, MANGE D. Phylogenetic, on-togenetic, and epigenetie view of bio-inspired hardware systems[J]. IEEE Transactions on Evolutionary Computation, 1997, 1(1): 83-97.

    [7] TORRESEN J. An evolvable hardware tutorial[C]// Proceeding of the 14th International Conference on Field Programmable Logic and Applications, 2004: 821-830.

    [8] STAUFFER A, MANGE D, SANCHEZ E, et al. Embryo-nics: towards new design methodologies for circuits with biological-like properties[C]//Proceedings of the International Workshop on Logic and Architecture Synthesis, IASTED, 1995: 299-306.

    [9] BRADLEY D W, TYRRELL A M. The architecture for a hardware immune system[C]//Proceedings of the 3rd NASA/DoD Workshop on Evolvable Hardware, 2001: 193-200.

    [10] JAMALLI M R, DEHYADEGARI M, ARAMI A. Real-time embedded emotional controller[J]. Neural Computing & Applications, 2010, 19(1): 13-19.

    [11] GREENSTED A J, TYRRELL A M. Extrinsic evolvable hardware on the RISA architecture[C]//Proceedings of the 7th International Conference on Evolvable Systems: From Biology to Hardware, Wuhan, China, 2007: 244-255.

    [12] SAMLE M, DRAGFFY G, POPESCU A. Prokaryotic bio-inspired model for embryonics[C]//Proceedings of the 4th NASA/ESA Conference on Adaptive Hardware and Systems, San Francisco, CA, USA, 2009: 163-170.

    [13] SAMIE M, DRAGFFY G, PIPE T. UNITRONICS: a novel bio-inspired fault tolerant cellular system[C]//NASA/ESA Conference on Adaptive Hardware and Systems(AHS), Piscataway, NJ, USA, 2011: 58-65.

    [14] BREMNER P, LIU Y, SAMIE M. SABRE: a bio-inspired fault-tolerant electronic architecture[J]. Bioinspiration & Biomimetics, 2013, 8(1): 1-17.

    [15] TEMPESTI G, ROGGEN D, SANCHEZ E. Ontogenetic development and fault tolerance in the POEtic tissue[C]//Proceedings of the 5th International Conference on Evolvable Systems: From Biology to Hardware, Trond-heim, Norway, 2003: 141-152.

    [16] THOMA Y, TEMPESTI G, SANCHEZ E. POEtic: an electronic tissue for bio-inspired cellular applications[J]. Biosystem, 2004, 76(3): 191-200.

    [17] UPEGUI A, THOMA Y, PEREZ-URIBE A. Dynamic routing on the ubichip: toward synaptogenetic neural networks[C]//NASA/ESA Conference on Adaptive Hardware and Systems Conference, Noordwijk, Netherlands, 2008: 228-235.

    [18] UPEGUI A, THOMA Y, SATIZABAL H F. Ubichip, ubidu-le, and marxbot: a hardware platform for the simulation of complex systems[C]//The 9th International Conference on Evolvable Systems: From Biology to Hardware, 2010: 286-298.

    [19] KIM S, CHU H, YANG I. A hierarchical self-repairing architecture for fast fault recovery of digital systems inspired from paralogous gene regulatory circuits[J]. IEEE Transactions on Very Large Scale Integration (VLSI) Systems, 2012, 20(12): 2315-2328.

    [20] YANG I, JUNG S H, CHO K. Self-repairing digital system with unified recovery process inspired by endocrine cellular communication[J]. IEEE Transactions on Very Large Scale Integration (VLSI) Systems, 2013, 21(6): 1027-1040.

    [24] XU J Q, DOU Y, LYU Q, et al. Etissue: a bio-inspired match-based reconfigurable hardware architecture supporting hierarchical self-healing and self-evolution[C]//NASA/ESA Conference on Adaptive Hardware and Systems(AHS), San Diego, CA, USA, 2011: 311-318.

    [31] ZHANG Z, WANG Y R. Method to self-repairing reconfiguration strategy selection of embryonic cellular array on reliability analysis[C]//NASA/ESA Conference on Adaptive Hardware and Systems (AHS), IEEE, 2014: 225-232.

    [34] ZHU S, CAI J Y, MENG Y F, et al. A novel embryonics system with evolutionary ability[J]. WSEAS Transactions on Circuits and Systems, 2015, 14: 164-173.

    [35] ZHU S, CAI J Y, MENG Y F. Partial-DNA cyclic memory for bio-inspired electronic cell[J]. Genet Program Evolvable Mach. doi: 10. 1007/s10710-015-9248-2.

    WANG Tao, CAI Jin-yan, ZHANG Jun-bin. A Comprehensive Research on Self-Healing of Embryonic Hardware-Based Circuit Failures[J]. Electronics Optics & Control, 2016, 23(10): 59
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