On the Delay-Constrained Maximum Concurrent Flow Problem

📅 2026-09-04
📈 Citations: 0
Influential: 0
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🤖 AI Summary
研究了实时服务中延迟约束下的最大并发流问题,通过引入新的凸松弛方法解决了该问题的非凸性,并提出了具有性能保证的近似算法。
📝 Abstract
Real-time services, such as VoIP and large-scale neural network training, require strict transmission delay guarantees. While routing under hop constraints is tractable, real-world delays increase sharply with equipment load, typically modeled using the M/M/1 queuing function where delay is inversely proportional to available bandwidth. We investigate the resulting Delay-Constrained Maximum Concurrent Flow (DCMCF) problem, which seeks to maximize the minimum throughput across all commodities. The problem's complexity stems from the conditional and non-linear nature of the delay constraints, which are active only along the specific paths used by the flow. We prove that DCMCF is strongly NP-hard, even for single-source/single-destination instances. To address the inherent non-convexity of the problem, we introduce a new convex relaxation expressed through second-order cone constraints, obtained from the convex envelope of a function representing the conditional delay associated with a single arc of a given path. The relaxation is shown to outperform existing formulations based on disjunctive programming. Leveraging this result, we develop a polynomial-time approximation algorithm with a provable performance guarantee and present numerical experiments demonstrating the effectiveness of the proposed approach.
Problem

Research questions and friction points this paper is trying to address.

Delay-Constrained
Maximum Concurrent Flow
Real-time services
M/M/1 queuing function
Throughput
Innovation

Methods, ideas, or system contributions that make the work stand out.

Delay-Constrained Maximum Concurrent Flow
convex relaxation
second-order cone constraints
polynomial-time approximation algorithm
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