Learn-and-Adapt Stochastic Dual Gradients for Network Resource Allocation
March 05, 2017 ยท Declared Dead ยท ๐ IEEE Transactions on Control of Network Systems
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Authors
Tianyi Chen, Qing Ling, Georgios B. Giannakis
arXiv ID
1703.01673
Category
eess.SY: Systems & Control (EE)
Cross-listed
cs.DC
Citations
23
Venue
IEEE Transactions on Control of Network Systems
Last Checked
1 month ago
Abstract
Network resource allocation shows revived popularity in the era of data deluge and information explosion. Existing stochastic optimization approaches fall short in attaining a desirable cost-delay tradeoff. Recognizing the central role of Lagrange multipliers in network resource allocation, a novel learn-and-adapt stochastic dual gradient (LA-SDG) method is developed in this paper to learn the sample-optimal Lagrange multiplier from historical data, and accordingly adapt the upcoming resource allocation strategy. Remarkably, LA-SDG only requires just an extra sample (gradient) evaluation relative to the celebrated stochastic dual gradient (SDG) method. LA-SDG can be interpreted as a foresighted learning scheme with an eye on the future, or, a modified heavy-ball iteration from an optimization viewpoint. It is established - both theoretically and empirically - that LA-SDG markedly improves the cost-delay tradeoff over state-of-the-art allocation schemes.
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