Page 397 - 《软件学报》2026年第1期
P. 397

394                                                        软件学报  2026  年第  37  卷第  1  期


                     2021. https://www.rfc-editor.org/rfc/rfc8986
                  [5]   Dawra G, Talaulikar K, Raszuk R, Decraene B, Zhuang SW, Rabadan J. BGP overlay services based on segment routing over IPv6
                     (SRv6). RFC 9252, 2022. https://www.rfc-editor.org/info/rfc9252
                  [6]   Filsfils C, Talaulikar K, Voyer D, Bogdanov A, Mattes P. Segment routing policy architecture. RFC 9256, 2022. https://www.rfc-editor.
                     org/info/rfc9256
                  [7]   Ali Z, Filsfils C, Matsushima S, Voyer D, Chen M. Operations, administration, and maintenance (OAM) in segment routing over IPv6
                     (SRv6). RFC 9259, 2022. https://www.rfc-editor.org/info/rfc9259
                  [8]   Psenak P, Filsfils C, Bashandy A, Decraene B, Hu Z. Is-is extensions to support segment routing over the IPv6 data plane. RFC 9352,
                     2023. https://www.rfc-editor.org/info/rfc9352
                  [9]   Filsfils C, Kohno M, Voyer D. Segment routing over IPv6 for the mobile user plane. RFC 9433, 2023. https://www.rfc-editor.org/info/
                     rfc9433
                 [10]   Li ZB, Hu ZB, Talaulikar K, Psenak P. OSPFv3 extensions for segment routing over IPv6 (SRv6). RFC 9513, 2023. https://www.rfc-
                     editor.org/info/rfc9513
                 [11]   Graf T, Claise B, Francois P. Export of segment routing over IPv6 information in IP flow information export (IPFIX). RFC 9487, 2023.
                     https://www.rfc-editor.org/info/rfc9487
                 [12]   Dawra G, Filsfils C, Talaulikar K, Chen M, Bernier D, Decraene B. Border gateway protocol-link state (BGP-LS) extensions for segment
                     routing over IPv6 (SRv6). RFC 9514, 2023. https://www.rfc-editor.org/info/rfc9514
                 [13]   Ventre PL, Salsano S, Polverini M, Cianfrani A, Abdelsalam A, Filsfils C, Camarillo P, Clad F. Segment routing: A comprehensive
                     survey  of  research  activities,  standardization  efforts,  and  implementation  results.  IEEE  Communications  Surveys  &  Tutorials,  2021,
                     23(1): 182–221. [doi: 10.1109/COMST.2020.3036826]
                 [14]   Lebrun D, Bonaventure O. Implementing IPv6 segment routing in the linux kernel. In: Proc. of the 2017 Applied Networking Research
                     Workshop. Prague Czech: ACM, 2017. 35–41. [doi: 10.1145/3106328.3106329]
                 [15]   Abdelsalam  A,  Ventre  PL,  Scarpitta  C,  Mayer  A,  Salsano  S,  Camarillo  P,  Clad  F,  Filsfils  C.  SRPerf:  A  performance  evaluation
                     framework for IPv6 segment routing. IEEE Trans. on Network and Service Management, 2021, 18(2): 2320–2333. [doi: 10.1109/TNSM.
                     2020.3048328]
                 [16]   Cisco.  Release  notes  for  cisco  ASR  9000  series  routers,  IOS  XR  release  7.9.21.  2023.  https://www.cisco.com/c/en/us/td/docs/routers/
                     asr9000/software/asr9k-r7-9/general/release/notes/b-release-notes-asr9000-r7921.html
                 [17]   Arrcus. The ArcOS: Segment routing (SRv6). San Jose: Arrcus, 2022. https://arrcus-admin.prod.unomena.io/media/documents/Arrcus_
                     SRv6_Solution_Brief.pdf
                 [18]   Nishizawa H, Ishida W, Sone Y, Tanaka T, Kuwabara S, Inui T, Sasai T, Tomizawa M. Open whitebox architecture for smart integration
                     of optical networking and data center technology [invited]. Journal of Optical Communications and Networking, 2021, 13(1): A78–A87.
                     [doi: 10.1364/JOCN.403205]
                 [19]   Renl B, Guo DK, Tang GM, Wang WJ, Luo LL, Fu XM. SRUF: Low-latency path routing with SRv6 underlay federation in wide area
                     network. In: Proc. of the 41st IEEE Int’l Conf. on Distributed Computing Systems. Washington: IEEE, 2021. 910–920. [doi: 10.1109/
                     ICDCS51616.2021.00091]
                 [20]   Cianfrani A, Aureli D, Listanti M, Polverini M. Multi agent reinforcement learning based local routing strategy to reduce end-to-end
                     delays in segment routing networks. In: Proc. of the 2023 IEEE Conf. on Computer Communications Workshops. Hoboken: IEEE, 2023.
                     1–6. [doi: 10.1109/INFOCOMWKSHPS57453.2023.10225785]
                 [21]   Miyasaka T, Hei Y, Kitahara T. NetworkAPI: An in-band signalling application-aware traffic engineering using SRv6 and IP anycast. In:
                     Proc.  of  the  2020  Workshop  on  Network  Application  Integration/CoDesign.  New  York:  ACM,  2020.  8–13.  [doi:  10.1145/3405672.
                     3405805]
                 [22]   Chang H, Hao F, Kodialam M, Lakshman TV, Mukherjee S, Varvello M. Towards network-assisted publish-subscribe over wide area
                     networks. Computer Networks, 2023, 231: 109702. [doi: 10.1016/j.comnet.2023.109702]
                 [23]   Schiller  E,  Feng  C,  Ribeiro  RH,  Marino  F,  Buck  M,  Stiller  B.  Demo:  Utilizing  SRv6  to  optimize  the  routing  behavior  for  tactical
                     networks.  In:  Proc.  of  the  24th  IEEE  Int’l  Symp.  on  a  World  of  Wireless,  Mobile  and  Multimedia  Networks.  Boston:  IEEE,  2023.
                     361–363. [doi: 10.1109/WoWMoM57956.2023.00063]
                 [24]   Toyota Y, Mishima W, Kanaya K, Nakamura O. Performance aware egress path discovery for content provider with SRv6 egress peer
                     engineering. IEICE Trans. on Information and Systems, 2023, E106.D(5): 927–939. [doi: 10.1587/transinf.2022NTP0003]
                 [25]   Huang YD, Wang S, Huang T, Liu YJ. Cycle-based time-sensitive and deterministic networks: Architecture, challenges, and open issues.
                     IEEE Communications Magazine, 2022, 60(6): 81–87. [doi: 10.1109/MCOM.001.2100865]
   392   393   394   395   396   397   398   399   400   401   402