When Multipath QUIC meets model predictive control and band sparse network coding: a novel multipathing solution for video streaming over heterogeneous wireless networks

Date published

2025

Free to read from

2025-07-01

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IEEE

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Article

ISSN

0018-9316

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Citation

Cao Y, Zhang H, Jiang M, et al., (2025) When Multipath QUIC meets model predictive control and band sparse network coding: a novel multipathing solution for video streaming over heterogeneous wireless networks. IEEE Transactions on Broadcasting, Available online 16 June 2025

Abstract

Multipath Quick UDP Internet Connections (MPQUIC) integrated with network coding offers a promising approach to improving the Quality of Experience (QoE) for video services over heterogeneous wireless networks. However, a significant challenge arises when encoding nodes transmit potentially redundant packets while awaiting decoding acknowledgments (ACKs) from endpoints. This behavior can limit effective transmission rates, thereby degrading real-time streaming performance and user QoE. In this paper, we propose MP2-QUIC, which addresses these challenges through a novel adaptive Model Predictive Control (MPC) framework for MPQUIC that optimizes both congestion window and encoding redundancy parameters via a discrete state transition model. By incorporating operating point linearization and leveraging the Central Limit Theorem, MP2-QUIC effectively enhances the control performance and effective throughput of the model in heterogeneous wireless network environments. MP2-QUIC further employs Band-Sparse Network Coding (Band-SNC) to minimize computational complexity at endpoints, while utilizing queuing theory principles to determine optimal encoded packet quantities. This integrated approach significantly enhances end-user QoE, and the experimental results demonstrate MP2-QUIC’s superior performance compared to existing MPQUIC encoding solutions, yielding a 68.85% reduction in peak decoding overhead and marked improvements in Peak Signal-to-Noise Ratio (PSNR).

Description

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Github

Keywords

4006 Communications Engineering, 40 Engineering, Networking & Telecommunications, Heterogeneous wireless networks, video streaming, network coding, transmission efficiency, QoE

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Attribution 4.0 International

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This work was supported in part by the Gan Po Talent Support Program-Academic and Technical Leaders Training Program in Major Disciplines of Jiangxi Province (Grant Number: 20243BCE51007), in part by the Natural Science Foundation of Jiangxi Province under Grant No. 20224ACB202007, and by the Graduate Innovation Fund of Jiangxi Normal University under Grant No. YJS2024060.

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