A Survey on the impact of Connection-Aware Congestion Identification in RLNC-Based Networks on Quality of Service

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Author(s)

Syed Abid Husain 1,* Baswaraj Gadgay 2 Shubhangi D. C. 3

1. BLDEACET Vijayapur, affialated tovisvesvaraya Technological University, belagavi Karnataka, India

2. VTU Regional centre, kalaburgi Karnataka, India

3. Dept of CSE, VTU Regional centre kalaburgi Karnataka, India

* Corresponding author.

DOI: https://doi.org/10.5815/ijwmt.2024.04.04

Received: 17 Mar. 2024 / Revised: 23 May 2024 / Accepted: 10 Jul. 2024 / Published: 8 Aug. 2024

Index Terms

RLNC(random linear network coding), congestion, SVD(singular value decomposition), LR(linear regression), detection

Abstract

Wireless multicast networks, especially in the domains of IoT, 5G, and e-health, are experiencing a growing adoption of random linear network coding (RLNC). Nevertheless, the exponential growth of data can lead to congestion problems. This paper presents a review on novel technique called singular value decomposition (SVD) for the identification of network congestion. When SVD combines with statistical concepts like linear regression can to effectively handle large datasets and conduct comprehensive data analytics. The svd improves network performance and reliability by proactively identifying and mitigating congestion. Additionally, it improves the efficiency of data transmission and delivery in different application scenarios.

Cite This Paper

Syed Abid Husain, Baswaraj Gadgay, Shubhangi D. C., "A Survey on the impact of Connection-Aware Congestion Identification in RLNC-Based Networks on Quality of Service", International Journal of Wireless and Microwave Technologies(IJWMT), Vol.14, No.4, pp. 48-55, 2024. DOI:10.5815/ijwmt.2024.04.04

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