Nothing Special   »   [go: up one dir, main page]

skip to main content
10.1145/3357150.3357394acmconferencesArticle/Chapter ViewAbstractPublication PagescommConference Proceedingsconference-collections
research-article

Enabling ICN in the Internet Protocol: Analysis and Evaluation of the Hybrid-ICN Architecture

Published: 24 September 2019 Publication History

Abstract

Information-Centric Networking (ICN) embraces a family of network architectures rethinking Internet communication principles around named-data. After several years of research and the emergence of a few popular proposals, the idea to replace the Internet protocol with data-centric networking remains a subject of debate. ICN advantages have been advocated in the context of 5G networks for the support of highly mobile, multi-access/source and latency-minimal patterns of communications. However, large scale testing and insertion in operational networks are yet to happen, likely due to the lack of a clear incremental deployment strategy. In this paper, we analyze a recent proposal Hybrid-ICN (hICN), an ICN integration inside IP (rather that over/ under/ in place of) that has the ambition to trade-off no ICN architectural principles. By reusing existing packet formats, hICN brings innovation inside the IP stack, requiring minimal software upgrades and guaranteeing transparent interconnection with existing IP networks.
We describe the architecture and use the open source implementation to test hICN in the open Internet to validate its short-term deployability. Further, we consider linear video streaming over mobile wireless heterogeneous networks as use case to highlight hICN advantages compared to TCP/IP counterpart.

References

[1]
IPv6 CIDR REPORT. http://www.cidr-report.org/v6/as2-0/.
[2]
NSF/Intel, Partnership on Information-Centric Networking in Wireless Edge Networks (ICN-WEN). https://www.nsf.gov/pubs/2016/nsf16586/nsf16586.htm.
[3]
Open Broadcaster Software (OBS). https://obsproject.com/.
[4]
PeeringDB, The Interconnection Database. https://www.peeringdb.com/.
[5]
The NDN project, Named-Data Networking Principles. https://named-data.net/project/ndn-design-principles/.
[6]
The NGINX HTTP server. https://nginx.org/en/.
[7]
The NGINX RTMP module. https://nginx.org/en/.
[8]
The pache Traffic Server, The Apache Foundation. http://trafficserver.apache.org/.
[9]
The Route Views Project. http://www.routeviews.org/.
[10]
YouTube Best Practice, Live encoder settings, bitrates, and resolutions. http://goo.gl/tDtc1i.
[11]
Internet AS-level Topology Archive. http://irl.cs.ucla.edu/topology, 2018.
[12]
MGEN, The multi-protocol generator. https://www.nrl.navy.mil/itd/ncs/products/mgen, 2018.
[13]
Team Cymru, IP to ASN mapping. http://www.team-cymru.org/Services/ip-to-asn.html, Accessed Dec. 2017.
[14]
AbdAllah, E. G., Hassanein, H. S., and Zulkernine, M. A survey of security attacks in information-centric networking. IEEE Communications Surveys Tutorials 17, 3 (thirdquarter 2015), 1441--1454.
[15]
Adhatarao, S. S., Chen, J., Arumaithurai, M., Fu, X., and Ramakrishnan, K. K. Comparison of naming schema in icn. In Proc. IEEE LANMAN'16 (June 2016).
[16]
Atkinson, R., and Bhatti, S. Identifier-Locator Network Protocol (ILNP) Architectural Description. RFC 6740, Nov 2012.
[17]
Augé, J., And al. libparistraceroute. https://github.com/libparistraceroute/.
[18]
Augé, J., Carofiglio, G., Enguehard, M., Muscariello, L., and Sardara, M. Simple and efficient icn network virtualization with vicn. In Proceedings of the 4th ACM Conference on Information-Centric Networking (New York, NY, USA, 2017), ICN '17, ACM, pp. 216--217.
[19]
Augé, J., Carofiglio, G., Grassi, G., Muscariello, L., Pau, G., and Zeng, X. Map-me: Managing anchor-less producer mobility in information-centric networks. IEEE Transactions on Network and Service Management (2018).
[20]
Auge, J., Carofiglio, G., Muscariello, L., and Papalini, M. Anchorless mobility management through hICN (hICN-AMM): Deployment options. Internet-Draft draft-auge-dmm-hicn-mobility-deployment-options-01, Internet Engineering Task Force, Dec 2018. Work in Progress.
[21]
Auge, J., Carofiglio, G., Muscariello, L., and Papalini, M. Anchorless mobility through hICN. Internet-Draft draft-auge-dmm-hicn-mobility-01, Internet Engineering Task Force, Dec 2018. Work in Progress.
[22]
Barford, P., Bestavros, A., Byers, J., and Crovella, M. On the marginal utility of network topology measurements. In Proc. ACM IMW'01 (2001).
[23]
Bari, M. F., Chowdhury, S. R., Ahmed, R., Boutaba, R., and Mathieu, B. A survey of naming and routing in information-centric networks. IEEE Communications Magazine 50, 12 (December 2012), 44--53.
[24]
Barnes, R., Millican, J., Omara, E., Cohn-Gordon, K., and Robert, R. The Messaging Layer Security (MLS) Protocol. Internet-Draft draft-ietf-mls-protocol-04, Internet Engineering Task Force, Mar 2019. Work in Progress.
[25]
Baugher, M., Davie, B., Narayanan, A., and Oran, D. Self-verifying names for read-only named data. In Proc. of IEEE INFOCOM 2012 Workshops (March 2012), pp. 274--279.
[26]
Bhat, D., Wang, C., Rizk, A., and Zink, M. A load balancing approach for adaptive bitrate streaming in information centric networks. In 2015 IEEE International Conference on Multimedia Expo Workshops (ICMEW) (June 2015), pp. 1--6.
[27]
Carofiglio, G., Gallo, M., and Muscariello, L. Joint hop-by-hop and receiver-driven interest control protocol for content-centric networks. In ACM ICN'12 (New York, NY, USA, 2012), pp. 37--42.
[28]
Carofiglio, G., Gallo, M., and Muscariello, L. On the performance of bandwidth and storage sharing in information-centric networks. Computer Networks 57, 17 (Dec 2013), 3743--3758.
[29]
Carofiglio, G., Gallo, M., and Muscariello, L. Optimal multipath congestion control and request forwarding in information-centric networks:Protocol design and experimentation. Computer Networks 110 (2016), 104--117.
[30]
Carofiglio, G., Gallo, M., Muscariello, L., and Perino, D. Pending interest table sizing in named data networking. In Proceedings of the 2Nd ACM Conference on Information-Centric Networking (2015), ACM-ICN '15, pp. 49--58.
[31]
Carofiglio, G., Morabito, G., Muscariello, L., Solis, I., and Varvello, M. From content delivery today to information centric networking. Comput. Netw. 57, 16 (Nov 2013), 3116--3127.
[32]
Carofiglio, G., Muscariello, L., Papalini, M., Rozhnova, N., and Zeng, X. Leveraging icn in-network control for loss detection and recovery in wireless mobile networks. In ACM ICN'16 (New York, NY, USA, 2016), pp. 50--59.
[33]
Chai, W., He, D., Psaras, I., and Pavlou, G. Cache "less for more" in information-centric networks. In IFIP'12 (Berlin, Heidelberg, 2012), pp. 27--40.
[34]
Detti, A., Salsano, S., and Blefari-Melazzi, N. Ip protocol suite extensions to support conet information centric networking. Internet-Draft draft-detti-conet-ip-option-05, Internet Engineering Task Force, Jun 2013. Work in Progress.
[35]
Farinacci, D., Fuller, V., Meyer, D., and Lewis, D. The Locator/ID Separation Protocol (LISP). RFC 6830, Jan 2013.
[36]
Fayazbakhsh, S., Lin, Y., Tootoonchian, A., Ghodsi, A., Koponen, T., Maggs, B., Ng, K., Sekar, V., and Shenker, S. Less pain, most of the gain: Incrementally deployable icn. In Proc. of the ACM SIGCOMM 2013 (New York, NY, USA, 2013), SIGCOMM '13, pp. 147--158.
[37]
Feng, B., Zhou, H., and Xu, Q. Mobility support in named data networking: a survey.
[38]
Garcia-Luna-Aceves, J. J., Martinez-Castillo, J. E., and Menchaca-Mendez, R. Routing to multi-instantiated destinations: Principles, practice and applications. IEEE Transactions on Mobile Computing PP, 99 (2017), 1--1.
[39]
Ghali, C., Tsudik, G., and Wood, C. (the futility of) data privacy in content-centric networking. In Proceedings of the 2016 ACM on Workshop on Privacy in the Electronic Society (2016), pp. 143--152.
[40]
Ghali, C., Tsudik, G., and Wood, C. A. Network names in content-centric networking. In Proc. of the 3rd ACM SIGCOMM ICN (New York, NY, USA, 2016), ACM ICN'16, pp. 132--141.
[41]
Ghodsi, A., Koponen, T., Rajahalme, J., Sarolahti, P., and Shenker, S. Naming in content-oriented architectures. In ACM ICN'11 (New York, NY, USA, 2011), pp. 1--6.
[42]
Grandl, R., Su, K., and Westphal, C. On the interaction of adaptive video streaming with content-centric networking. In Proc. of IEEE Int. Packet Video Workshop (Dec. 2013).
[43]
Hankins, D., Mrugalski, T., Siodelski, M., Jiang, S., and Krishnan, S. Guidelines for Creating New DHCPv6 Options. RFC 7227, May 2014.
[44]
Heath, L., Owen, H., Beyah, R., and State, R. Clip: Content labeling in ipv6, a layer 3 protocol for information centric networking. In Proc. of ICC 2013 (June 2013), pp. 3732--3737.
[45]
Hesmans, B., Duchene, F., Paasch, C., Detal, G., and Bonaventure, O. Are tcp extensions middlebox-proof? In Proc. of the 2013 HotMiddlebox Workshop (New York, NY, USA, 2013), HotMiddlebox '13, pp. 37--42.
[46]
Honda, M., Nishida, Y., Raiciu, C., Greenhalgh, A., Handley, M., and Tokuda, H. Is it still possible to extend tcp? In Proc. of ACM SIGCOMM IMC 2011 (New York, NY, USA, 2011), IMC '11, pp. 181--194.
[47]
Ioannidis, S., and Yeh, E. Jointly optimal routing and caching for arbitrary network topologies. In Proc. of the 4th ACM SIGCOMM ICN 2017 (2017), pp. 77--87.
[48]
ITU-T. Study Group 13, Data aware networking (information centric networking) - Requirements and capabilities. https://www.itu.int/rec/T-REC-Y.3071-201703-P, Dec 2016.
[49]
Jacobson, V., Smetters, D. K., Thornton, J. D., Plass, M. F., Briggs, N. H., and Braynard, R. L. Networking named content. In Proc. of the 5th ACM CoNEXT (New York, NY, USA, 2009), CoNEXT '09, pp. 1--12.
[50]
James, C., Halepovic, E., Wang, M., Jana, R., and Shankaranarayanan, N. K. Is multipath tcp (mptcp) beneficial for video streaming over dash? In 2016 IEEE 24th International Symposium on Modeling, Analysis and Simulation of Computer and Telecommunication Systems (MASCOTS) (Sept 2016), pp. 331--336.
[51]
Jiang, X., Bi, J., and Wang, Y. What benefits does ndn have in supporting mobility. In Proc. of IEEE Symposium on Computers and Communications (ISCC) (June 2014), pp. 1--6.
[52]
Koch, P. A DNS RR Type for Lists of Address Prefixes (APL RR). RFC 3123, Jun 2001.
[53]
Langley, A., et al. The quic transport protocol: Design and internet-scale deployment. In Proceedings of the Conference of the ACM Special Interest Group on Data Communication (New York, NY, USA, 2017), SIGCOMM '17, ACM, pp. 183--196.
[54]
Larumbe, F., and Mathur, A. Facebook engineering - under the hood: Broadcasting live video to millions. http://goo.gl/gsFyqo.
[55]
Lederer, S., et al. Adaptive streaming over content centric networks in mobile networks using multiple links. In Proc. of IEEE ICC (2013).
[56]
Lederer, S., Mueller, C., Rainer, B., Timmerer, C., and Hellwagner, H. An experimental analysis of dynamic adaptive streaming over http in content centric networks. In 2013 IEEE International Conference on Multimedia and Expo (ICME) (July 2013), pp. 1--6.
[57]
Linux Foundation FD.io. CICN project, wiki page. https://wiki.fd.io/view/Cicn.
[58]
Linux Foundation FD.io. White Paper - Vector Packet Processing - One Terabit Software Router on Intel Xeon Scalable Processor Family Server. https://fd.io.
[59]
Liu, X., Trappe, W., and Zhang, Y. Secure name resolution for identifier-to-locator mappings in the global internet. In 2013 22nd International Conference on Computer Communication and Networks (ICCCN) (July 2013), pp. 1--7.
[60]
Majeed, M., Ahmed, S., Muhammad, S., Song, H., and Rawat, D. Multimedia streaming in information-centric networking: A survey and future perspectives. Computer Networks 125 (2017), 103--121.
[61]
Misra, S., Tourani, R., and Majd, N. Secure content delivery in information-centric networks: Design, implementation, and analyses. In ACM ICN'13 (New York, NY, USA, 2013), pp. 73--78.
[62]
Mosko, M., Solis, I., and Wood, C. A. Content-Centric Networking (CCNx) Messages in TLV Format. RFC 8609, Jul 2019.
[63]
Mosko, M., Solis, I., and Wood, C. A. Content-Centric Networking (CCNx) Semantics. RFC 8569, Jul 2019.
[64]
Muscariello, L., Carofiglio, G., Auge, J., and Papalini, M. Hybrid Information-Centric Networking. Internet-Draft draft-muscariello-intarea-hicn, Internet Engineering Task Force, Jun 2019. Work in Progress.
[65]
Ngai, E., Ohlman, B., Tsudik, G., Uzun, E., Wahlisch, M., and Wood, C. A. Can we make a cake and eat it too? a discussion of icn security and privacy. SIGCOMM Comput. Commun. Rev. 47, 1 (Jan 2017), 49--54.
[66]
Paper, G. A. W. Understanding information-centric networking and mobile edge computing. http://www.5gamericas.org/files/1214/8175/3330/Understanding_Information_Centric_Networking_and_Mobile_Edge_Computing.pdf, Dec 2016.
[67]
Perino, D., Varvello, M., Linguaglossa, L., Laufer, R., and Boislaigue, R. Caesar: A content router for high-speed forwarding on content names. In 2014 ACM/IEEE ANCS Symposium (Oct 2014), pp. 137--147.
[68]
Petrangeli, S., Bouten, N., Claeys, M., and Turck, F. D. Towards svc-based adaptive streaming in information centric networks. In 2015 IEEE International Conference on Multimedia Expo Workshops (ICMEW) (June 2015), pp. 1--6.
[69]
Popa, L., Ghodsi, A., and Stoica, I. Http as the narrow waist of the future internet. In Proc. of the 9th ACM SIGCOMM Hotnets Workshop (New York, NY, USA, 2010), Hotnets-IX, pp. 6:1--6:6.
[70]
Posch, D., Kreuzberger, C., Rainer, B., and Hellwagner, H. Using in-network adaptation to tackle inefficiencies caused by dash in information-centric networks. In Proceedings of the 2014 Workshop on Design, Quality and Deployment of Adaptive Video Streaming (New York, NY, USA, 2014), VideoNext '14, ACM, pp. 25--30.
[71]
Rahman, A., Trossen, D., Kutscher, D., and Ravindran, R. Deployment Considerations for Information-Centric Networking (ICN). Internet-Draft draft-rahman-icnrg-deployment-guidelines-05, Internet Engineering Task Force, Jan 2018. Work in Progress.
[72]
Rainer, B., Posch, D., and Hellwagner, H. Investigating the performance of pull-based dynamic adaptive streaming in ndn. IEEE Journal on Selected Areas in Communications 34, 8 (Aug 2016), 2130--2140.
[73]
Ravindran, R., Chakraborti, A., Amin, S., Azgin, A., and Wang, G. 5g-icn: Delivering icn services over 5g using network slicing. IEEE Communications Magazine 55, 5 (May 2017), 101--107.
[74]
Ravindran, R., Lo, S., Zhang, X., and Wang, G. Supporting seamless mobility in named data networking. In Proc. of IEEE ICC 2012 (June 2012), pp. 5854--5869.
[75]
Ravindran, R., Suthar, P., and Wang, G. Enabling ICN in 3GPP's 5G NextGen Core Architecture. Internet-Draft draft-ravi-icnrg-5gc-icn-00, Internet Engineering Task Force, Oct 2017.
[76]
Ren, Y., Li, J., Shi, S., Li, L., Wang, G., and Zhang, B. Congestion control in named data networking - a survey. Comput. Commun. 86, C (Jul 2016), 1--11.
[77]
Rossini, G., and Rossi, D. A dive into the caching performance of content centric networking. In IEEE 17th Workshop on Computer Aided Modeling and Design of Communication Links and Networks (CAMAD) (Sept 2012), pp. 105--109.
[78]
Rossini, G., and Rossi, D. Evaluating ccn multi-path interest forwarding strategies. Comput. Commun. 36, 7 (Apr 2013), 771--778.
[79]
Saino, L., Cocora, C., and Pavlou, G. Cctcp: A scalable receiver-driven congestion control protocol for content centric networking. In Proc. of IEEE ICC 2013 (June 2013), pp. 3775--3780.
[80]
Samain, J., Carofiglio, G., Muscariello, L., Papalini, M., Sardara, M., Tortelli, M., and Rossi, D. Dynamic adaptive video streaming: Towards a systematic comparison of icn and tcp/ip. IEEE Transactions on Multimedia 19, 10 (Oct 2017), 2166--2181.
[81]
Sardara, M., Muscariello, L., and Compagno, A. A transport layer and socket api for (h)icn: Design, implementation and performance analysis. In Proc. of ACM SIGCOMM ICN '18 (2018).
[82]
Shalunov, S., Hazel, G., Iyengar, J., and Kühlewind, M. Low Extra Delay Background Transport (LEDBAT). RFC 6817, Dec 2012.
[83]
Smetters, D., and Jacobson, V. Securing network content. Tech. rep., 2009.
[84]
So, W., Narayanan, A., and Oran, D. Named data networking on a router: Fast and dos-resistant forwarding with hash tables. In 2013 ACM/IEEE ANCS Symposium (Oct 2013), pp. 215--225.
[85]
Srinivasan, S., Rimac, I., Hilt, V., Steiner, M., and Schulzrinne, H. Unveiling the content-centric features of tcp. In Proc. of IEEE ICC 2011 (June 2011), pp. 1--5.
[86]
Srinivasan, S., and Schulzrinne, H. Ipv6 addresses as content names in information-centric networking. In USENIX ATC 2011 - Poster session (June 2011).
[87]
Suthar, P., Stolic, M., Jangam, A., and Trossen, D. Native Deployment of ICN in LTE, 4G Mobile Networks. Internet-Draft draft-suthar-icnrg-icn-lte-4g-04, Internet Engineering Task Force, Nov 2017. Work in Progress.
[88]
Trossen, D., Reed, M. J., Riihijärvi, J., Georgiades, M., Fotiou, N., and Xylomenos, G. Ip over icn - the better ip? In 2015 European Conference on Networks and Communications (EuCNC) (Jun 2015), pp. 413--417.
[89]
Tyson, G., Sastry, N., Rimac, I., Cuevas, R., and Mauthe, A. A survey of mobility in information-centric networks: Challenges and research directions. In Proc. of the 1st ACM NoM Workshop 2012 (New York, NY, USA, 2012), NoM '12, pp. 1--6.
[90]
Vahlenkamp, M., Schneider, F., Kutscher, D., and Seedorf, J. Enabling ICN in IP networks using SDN. In ICNP (2013), pp. 1--2.
[91]
van Adrichem, N. L. M., and Kuipers, F. Ndnflow: Software-defined named data networking. In NetSoft (2015), pp. 1--5.
[92]
Wang, S., Bi, J., Wu, J., Yang, X., and Fan, L. On adapting http protocol to content centric networking. In Proc. of the 7th International Conference on Future Internet Technologies (New York, NY, USA, 2012), CFI '12, pp. 1--6.
[93]
Wang, Y., Rozhnova, N., Narayanan, A., Oran, D., and Rhee, I. An improved hop-by-hop interest shaper for congestion control in named data networking. In ACM ICN'13 (New York, NY, USA, 2013), pp. 55--60.
[94]
Westphal, C., et al. Adaptive Video Streaming over Information-Centric Networking (ICN). RFC 7933, Aug 2016.
[95]
White, G., and Rutz, G. Content delivery in content-centric networks. http://www.cablelabs.com/wp-content/uploads/2016/02/Content-Delivery-with-Content-Centric-Networking-Feb-2016.pdf, 2016.
[96]
Yi, C., Afanasyev, A., Moiseenko, I., Wang, L., Zhang, B., and Zhang, L. A case for stateful forwarding plane. Comput. Commun. 36, 7 (Apr 2013), 779--791.
[97]
Yi, C., Afanasyev, A., Wang, L., Zhang, B., and Zhang, L. Adaptive forwarding in named data networking. SIGCOMM Comput. Commun. Rev. 42, 3 (Jun 2012), 62--67.
[98]
Yu, Y., Afanasyev, A., Clark, D., claffy, K., Jacobson, V., and Zhang, L. Schematizing trust in named data networking. In Proc. of the 2Nd ACM SIGCOMM ICN (New York, NY, USA, 2015), ACM ICN'15, pp. 177--186.
[99]
Yuan, H., Crowley, P., and Song, T. Enhancing scalable name-based forwarding. In ANCS (2017), pp. 60--69.
[100]
Zhang, F., Zhang, Y., Reznik, A., Liu, H., Qian, C., and Xu, C. A transport protocol for content-centric networking with explicit congestion control. In Proc. of 23rd ICCCN 2014 (Aug 2014), pp. 1--8.
[101]
Zhang, G., Li, Y., and Lin, T. Caching in information centric networking: A survey. Computer Networks 57, 16 (2013), 3128--3141.
[102]
Zhang, M., Luo, H., and Zhang, H. A survey of caching mechanisms in information-centric networking. IEEE Communications Surveys Tutorials 17, 3 (2015), 1473--1499.
[103]
Zhang, Y., Afanasyev, A., Burke, J., and Zhang, L. A survey of mobility support in named data networking. In IEEE INFOCOM WKSHPS 2016 (April 2016), pp. 83--88.
[104]
Zuraniewski, P., van Adrichem, N., Ravesteijn, D., IJntema, W., Papadopoulos, C., and Fan, C. Facilitating icn deployment with an extended openflow protocol. In Proc. of the 4th ACM SIGCOMM ICN (New York, NY, USA, 2017), ICN '17, pp. 123--133.

Cited By

View all
  • (2024)An ICN-Based Delay-Sensitive Service Scheduling Architecture with Stateful Programmable Data Plane for Computing NetworkApplied Sciences10.3390/app14221020714:22(10207)Online publication date: 7-Nov-2024
  • (2024)An Efficient Decentralized Fine-grained Access Control for IoT Ecosystems over NDN2024 International Conference on Software, Telecommunications and Computer Networks (SoftCOM)10.23919/SoftCOM62040.2024.10721767(1-6)Online publication date: 26-Sep-2024
  • (2024)Exploring The Benefits of In-Band Service Routing2024 IFIP Networking Conference (IFIP Networking)10.23919/IFIPNetworking62109.2024.10619748(569-575)Online publication date: 3-Jun-2024
  • Show More Cited By

Index Terms

  1. Enabling ICN in the Internet Protocol: Analysis and Evaluation of the Hybrid-ICN Architecture

    Recommendations

    Comments

    Please enable JavaScript to view thecomments powered by Disqus.

    Information & Contributors

    Information

    Published In

    cover image ACM Conferences
    ICN '19: Proceedings of the 6th ACM Conference on Information-Centric Networking
    September 2019
    187 pages
    ISBN:9781450369701
    DOI:10.1145/3357150
    Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than ACM must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected]

    Sponsors

    Publisher

    Association for Computing Machinery

    New York, NY, United States

    Publication History

    Published: 24 September 2019

    Permissions

    Request permissions for this article.

    Check for updates

    Author Tags

    1. Future Internet architectures
    2. ICN
    3. IPv6

    Qualifiers

    • Research-article
    • Research
    • Refereed limited

    Conference

    ICN '19
    Sponsor:

    Acceptance Rates

    Overall Acceptance Rate 133 of 482 submissions, 28%

    Contributors

    Other Metrics

    Bibliometrics & Citations

    Bibliometrics

    Article Metrics

    • Downloads (Last 12 months)73
    • Downloads (Last 6 weeks)11
    Reflects downloads up to 24 Nov 2024

    Other Metrics

    Citations

    Cited By

    View all
    • (2024)An ICN-Based Delay-Sensitive Service Scheduling Architecture with Stateful Programmable Data Plane for Computing NetworkApplied Sciences10.3390/app14221020714:22(10207)Online publication date: 7-Nov-2024
    • (2024)An Efficient Decentralized Fine-grained Access Control for IoT Ecosystems over NDN2024 International Conference on Software, Telecommunications and Computer Networks (SoftCOM)10.23919/SoftCOM62040.2024.10721767(1-6)Online publication date: 26-Sep-2024
    • (2024)Exploring The Benefits of In-Band Service Routing2024 IFIP Networking Conference (IFIP Networking)10.23919/IFIPNetworking62109.2024.10619748(569-575)Online publication date: 3-Jun-2024
    • (2024)Resource Awareness Mechanism based on Multi-dimensional Identifier in Compute First Networking2024 9th International Conference on Computer and Communication Systems (ICCCS)10.1109/ICCCS61882.2024.10603019(605-610)Online publication date: 19-Apr-2024
    • (2024)Enabling Information-Centric Web Services with a Web Server2024 6th International Conference on Communications, Information System and Computer Engineering (CISCE)10.1109/CISCE62493.2024.10653013(439-442)Online publication date: 10-May-2024
    • (2024)IfNot: An approach towards mitigating interest flooding attacks in Named Data Networking of ThingsInternet of Things10.1016/j.iot.2024.10107625(101076)Online publication date: Apr-2024
    • (2024)Anonymous Federated Learning via Named-Data NetworkingFuture Generation Computer Systems10.1016/j.future.2023.11.009152(288-303)Online publication date: Mar-2024
    • (2024)Interworking Between IP and ICN with New IPMobile Multimedia Communications10.1007/978-3-031-60347-1_34(411-420)Online publication date: 25-Oct-2024
    • (2023)SoK: On Named Content and Inter-domain RoutingProceedings of the 10th ACM Conference on Information-Centric Networking10.1145/3623565.3623716(55-66)Online publication date: 9-Oct-2023
    • (2023)CCNx Router on FPGA Accelerator Achieving Predictable PerformanceProceedings of the 10th ACM Conference on Information-Centric Networking10.1145/3623565.3623710(1-11)Online publication date: 9-Oct-2023
    • Show More Cited By

    View Options

    Login options

    View options

    PDF

    View or Download as a PDF file.

    PDF

    eReader

    View online with eReader.

    eReader

    Media

    Figures

    Other

    Tables

    Share

    Share

    Share this Publication link

    Share on social media