Optimal Lagrange Multipliers for Dependent Rate Allocation in Video Coding
Ana De Abreu, Gene Cheung, Pascal Frossard, Fernando Pereira

TL;DR
This paper introduces an efficient dynamic programming method to find optimal Lagrange multipliers for dependent rate allocation in video coding, improving rate-distortion performance over standard methods.
Contribution
It proposes a novel DP-based approach to accurately identify the optimal Lagrange multiplier for dependent video rate allocation, addressing a longstanding open problem.
Findings
Outperforms HEVC rate control in Y-PSNR in experiments
Efficiently computes optimal multipliers for dependent coding scenarios
Improves rate-distortion trade-offs in monoview and multiview video coding
Abstract
In a typical video rate allocation problem, the objective is to optimally distribute a source rate budget among a set of (in)dependently coded data units to minimize the total distortion of all units. Conventional Lagrangian approaches convert the lone rate constraint to a linear rate penalty scaled by a multiplier in the objective, resulting in a simpler unconstrained formulation. However, the search for the "optimal" multiplier, one that results in a distortion-minimizing solution among all Lagrangian solutions that satisfy the original rate constraint, remains an elusive open problem in the general setting. To address this problem, we propose a computation-efficient search strategy to identify this optimal multiplier numerically. Specifically, we first formulate a general rate allocation problem where each data unit can be dependently coded at different quantization parameters (QP)…
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Taxonomy
TopicsVideo Coding and Compression Technologies · Advanced Data Compression Techniques · Advanced Vision and Imaging
