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Abstract
We consider the scenario where an energy harvesting source sends its updates to a receiver. The source optimizes its energy allocation over a decision period to maximize a sum of time-varying functions of the age of information (AoI), representing the value of providing timely information. In a practical online setting, we need to make irrevocable energy allocation decisions at each time while the time-varying functions and the energy arrivals are only revealed sequentially. The problem is then challenging as 1) we are facing uncertain energy harvesting arrivals and time-varying functions, and 2) the energy allocation decisions and the energy harvesting process are coupled due to the capacity-limited battery. In this paper, we develop an optimal online algorithm CR-Reserve and show it achieves (ln θ + 1)-competitive, where θ is a parameter representing the level of uncertainty of the time-varying functions. It is the optimal competitive ratio among all deterministic and randomized online algorithms. We conduct simulations based on real-world traces and compare our algorithms with conceivable alternatives. The results show that our algorithms achieve 12% performance improvement as compared to the state-of-the-art baseline. © 2024 IEEE.
| Original language | English |
|---|---|
| Title of host publication | IEEE INFOCOM 2024 - IEEE Conference on Computer Communications |
| Publisher | IEEE |
| Pages | 901-910 |
| ISBN (Electronic) | 979-8-3503-8350-8 |
| ISBN (Print) | 979-8-3503-8351-5 |
| DOIs | |
| Publication status | Published - 2024 |
| Event | 2024 IEEE Conference on Computer Communications (INFOCOM 2024) - Hyatt Regency, Vancouver, Canada Duration: 20 May 2024 → 23 May 2024 https://infocom2024.ieee-infocom.org/ |
Publication series
| Name | Proceedings - IEEE INFOCOM |
|---|---|
| ISSN (Print) | 0743-166X |
| ISSN (Electronic) | 2641-9874 |
Conference
| Conference | 2024 IEEE Conference on Computer Communications (INFOCOM 2024) |
|---|---|
| Abbreviated title | IEEE INFOCOM 2024 |
| Place | Canada |
| City | Vancouver |
| Period | 20/05/24 → 23/05/24 |
| Internet address |
Funding
The work presented in this paper was supported in part by a General Research Fund from Research Grants Council, Hong Kong (Project No. 11206821), an InnoHK initiative, The Government of the HKSAR, and Laboratory for AI-Powered Financial Technologies, as well as a ShenzhenHong Kong-Macau Science & Technology Project (Category C) (Project No. SGDX20220530111203026).
RGC Funding Information
- RGC-funded
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Dive into the research topics of 'Competitive Online Age-of-Information Optimization for Energy Harvesting Systems'. Together they form a unique fingerprint.Projects
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GRF: Competitive and Prediction-Aware Online Optimization for Storage-Assisted Demand Response under Load Uncertainty and Peak-Demand Charge
CHEN, M. (Principal Investigator / Project Coordinator)
1/12/21 → …
Project: Research
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