JOURNAL ARTICLE

Online Resource Allocation with Buyback: Optimal Algorithms via Primal-Dual

Abstract

Motivated by applications in cloud computing spot markets and selling banner ads on popular websites, we study the online resource allocation problem with costly buyback. To model this problem, we consider the classic edge-weighted fractional online matching problem with a tweak, where the decision maker can recall (i.e., buyback) any fraction of an offline resource that is pre-allocated to an earlier online vertex; however, by doing so not only the decision maker loses the previously allocated reward (which equates the edge-weight), it also has to pay a non-negative constant factor f of this edge-weight as an extra penalty. Parameterizing the problem by the buyback factor f, our main result is obtaining optimal competitive algorithms for all possible values of f through a novel primal-dual family of algorithms. We establish the optimality of our results by obtaining separate lower-bounds for each of small and large buyback factor regimes, and showing how our primal-dual algorithm exactly matches this lower-bound by appropriately tuning a parameter as a function of f. The optimal competitive ratio δgen(f) and the optimal competitive ratio δdet-int(f) of deterministic integral algorithms are as follows,[EQUATION]where W-1 : [-1/e, 0) → (-∞, -1] is the non-principal branch of the Lambert W function. © 2023 ACM.

Keywords:
Competitive analysis Online algorithm Dual (grammatical number) Computer science Upper and lower bounds Mathematical optimization Enhanced Data Rates for GSM Evolution Decision maker Algorithm Mathematics Artificial intelligence Operations research

Metrics

4
Cited By
0.88
FWCI (Field Weighted Citation Impact)
0
Refs
0.61
Citation Normalized Percentile
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Citation History

Topics

Optimization and Search Problems
Physical Sciences →  Computer Science →  Computer Networks and Communications
Advanced Bandit Algorithms Research
Social Sciences →  Decision Sciences →  Management Science and Operations Research
Facility Location and Emergency Management
Social Sciences →  Business, Management and Accounting →  Organizational Behavior and Human Resource Management

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