Abstract
We revisit the online dynamic acknowledgment problem. In the problem, a sequence of requests arrive over time to be acknowledged, and all outstanding requests can be satisfied simultaneously by one acknowledgement. The goal of the problem is to minimize the total request delay plus acknowledgement cost. This elegant model studies the tradeoff between acknowledgement cost and waiting experienced by requests. The problem has been well studied and the tight competitive ratios have been determined. For this well-studied problem, we focus on how to effectively use machine-learned predictions to have better performance.
We develop algorithms that perform arbitrarily close to the optimum with accurate predictions while concurrently having the guarantees arbitrarily close to what the best online algorithms can offer without access to predictions, thereby achieving simultaneous optimum consistency and robustness. This new result is enabled by our novel prediction error measure. No error measure was defined for the problem prior to our work, and natural measures failed due to the challenge that requests with different arrival times have different effects on the objective. We hope our ideas can be used for other online problems with temporal aspects that have been resisting proper error measures.
© 2023 IEEE.
We develop algorithms that perform arbitrarily close to the optimum with accurate predictions while concurrently having the guarantees arbitrarily close to what the best online algorithms can offer without access to predictions, thereby achieving simultaneous optimum consistency and robustness. This new result is enabled by our novel prediction error measure. No error measure was defined for the problem prior to our work, and natural measures failed due to the challenge that requests with different arrival times have different effects on the objective. We hope our ideas can be used for other online problems with temporal aspects that have been resisting proper error measures.
© 2023 IEEE.
| Original language | English |
|---|---|
| Title of host publication | INFOCOM 2023 - IEEE Conference on Computer Communications |
| Publisher | IEEE |
| ISBN (Electronic) | 979-8-3503-3414-2 |
| ISBN (Print) | 979-8-3503-3415-9 |
| DOIs | |
| Publication status | Published - 2023 |
| Event | 42nd IEEE International Conference on Computer Communications (IEEE INFOCOM 2023) - Hybrid, New York City, United States Duration: 17 May 2023 → 20 May 2023 https://infocom2023.ieee-infocom.org/ https://ieeexplore.ieee.org/xpl/conhome/1000359/all-proceedings |
Publication series
| Name | Proceedings - IEEE INFOCOM |
|---|---|
| ISSN (Print) | 0743-166X |
| ISSN (Electronic) | 2641-9874 |
Conference
| Conference | 42nd IEEE International Conference on Computer Communications (IEEE INFOCOM 2023) |
|---|---|
| Abbreviated title | INFOCOM 2023 |
| Place | United States |
| City | New York City |
| Period | 17/05/23 → 20/05/23 |
| Internet address |
Research Keywords
- Approximation Algorithms
- Competitive Ratio
- Learning-augmented Algorithms
- Online Algorithms
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