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Cite this DOI

10.46243/jst.2022.v7.i04.pp60-87 · Hybrid Diagonal Transposition Cipher Model for Securing Data in Software Defined Networks

APA (7th edition)

P.Mohana Priya, P. P. (2022). Hybrid Diagonal Transposition Cipher Model for Securing Data in Software Defined Networks. *Journal of Science & Technology*, *7*(4), 60–87. https://doi.org/10.46243/jst.2022.v7.i04.pp60-87

⬇ text Italics are shown as *asterisks* in plain text — the journal or book title and the volume.

BibTeX

@article{pmohanapriya2022hybrid,
  author    = {P.Mohana Priya, P.Mohana Priya},
  title     = {{Hybrid Diagonal Transposition Cipher Model for Securing Data in Software Defined Networks}},
  journal   = {Journal of Science \& Technology},
  year      = {2022},
  month     = {jun},
  volume    = {7},
  number    = {4},
  pages     = {60--87},
  publisher = {Longman Publishers},
  issn      = {2456-5660},
  doi       = {10.46243/jst.2022.v7.i04.pp60-87},
  url       = {https://doi.org/10.46243/jst.2022.v7.i04.pp60-87},
  language  = {en},
  abstract  = {Data is an important asset for every organization and hence this article is proposed to secure data from common breaches in software defined network. In this article, hybrid cipher model is proposed to safeguard the communication of data transmitted among the layers in software defined networks. The logic of hybrid cipher model is incorporated in software defined controller which encrypts open flow request and response messages. Software Defined Network is adapted for implementing hybrid cipher model as the network provides customizable platform and act as a unmanned security featured software controller. The proposed Hybrid Diagonal Transposition algorithm is incorporated with software defined wireless sensing node for encrypting user’s data. Hence the unmanned security featured wireless sensing node is situation-aware, it detects malicious traffic flows and encrypts user’s data. Hybrid Diagonal Transposition algorithm prevents data breaches in Software Defined Networks. Results are interpreted for various network and sensor metrics such as routing hops, participating node temperature, battery voltage, humidity, lights, received packets per node, number of network hops, power consumption, radio duty cycle, temperature of sensors, beacon interval, network hops, routing metric and the same work will be extended in future for comparative results.}
}

⬇ .bib

RIS (EndNote, Zotero, Mendeley)

TY  - JOUR
TI  - Hybrid Diagonal Transposition Cipher Model for Securing Data in Software Defined Networks
AU  - P.Mohana Priya, P.Mohana Priya
JO  - Journal of Science & Technology
PY  - 2022
DA  - 2022/06/27/
VL  - 7
IS  - 4
SP  - 60
EP  - 87
PB  - Longman Publishers
SN  - 2456-5660
LA  - en
AB  - Data is an important asset for every organization and hence this article is proposed to secure data from common breaches in software defined network. In this article, hybrid cipher model is proposed to safeguard the communication of data transmitted among the layers in software defined networks. The logic of hybrid cipher model is incorporated in software defined controller which encrypts open flow request and response messages. Software Defined Network is adapted for implementing hybrid cipher model as the network provides customizable platform and act as a unmanned security featured software controller. The proposed Hybrid Diagonal Transposition algorithm is incorporated with software defined wireless sensing node for encrypting user’s data. Hence the unmanned security featured wireless sensing node is situation-aware, it detects malicious traffic flows and encrypts user’s data. Hybrid Diagonal Transposition algorithm prevents data breaches in Software Defined Networks. Results are interpreted for various network and sensor metrics such as routing hops, participating node temperature, battery voltage, humidity, lights, received packets per node, number of network hops, power consumption, radio duty cycle, temperature of sensors, beacon interval, network hops, routing metric and the same work will be extended in future for comparative results.
DO  - 10.46243/jst.2022.v7.i04.pp60-87
UR  - https://doi.org/10.46243/jst.2022.v7.i04.pp60-87
ER  -

⬇ .ris

CSL-JSON

{
    "type": "article-journal",
    "id": "10.46243/jst.2022.v7.i04.pp60-87",
    "DOI": "10.46243/jst.2022.v7.i04.pp60-87",
    "URL": "https://doi.org/10.46243/jst.2022.v7.i04.pp60-87",
    "title": "Hybrid Diagonal Transposition Cipher Model for Securing Data in Software Defined Networks",
    "source": "Smart Scholars DOI Registry",
    "container-title": "Journal of Science & Technology",
    "author": [
        {
            "family": "P.Mohana Priya",
            "given": "P.Mohana Priya"
        }
    ],
    "issued": {
        "date-parts": [
            [
                2022,
                6,
                27
            ]
        ]
    },
    "volume": "7",
    "issue": "4",
    "page": "60-87",
    "publisher": "Longman Publishers",
    "language": "en",
    "abstract": "Data is an important asset for every organization and hence this article is proposed to secure data from common breaches in software defined network. In this article, hybrid cipher model is proposed to safeguard the communication of data transmitted among the layers in software defined networks. The logic of hybrid cipher model is incorporated in software defined controller which encrypts open flow request and response messages. Software Defined Network is adapted for implementing hybrid cipher model as the network provides customizable platform and act as a unmanned security featured software controller. The proposed Hybrid Diagonal Transposition algorithm is incorporated with software defined wireless sensing node for encrypting user’s data. Hence the unmanned security featured wireless sensing node is situation-aware, it detects malicious traffic flows and encrypts user’s data. Hybrid Diagonal Transposition algorithm prevents data breaches in Software Defined Networks. Results are interpreted for various network and sensor metrics such as routing hops, participating node temperature, battery voltage, humidity, lights, received packets per node, number of network hops, power consumption, radio duty cycle, temperature of sensors, beacon interval, network hops, routing metric and the same work will be extended in future for comparative results.",
    "ISSN": "2456-5660"
}

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