Towards Optimal Tradeoff Between Data Freshness and Update Cost in Information-update Systems
Zhongdong Liu, Bin Li, Zizhan Zheng, Y. Thomas Hou, and Bo Ji

TL;DR
This paper investigates the balance between data freshness and update costs in information-update systems, proposing an optimal threshold-based policy to minimize total costs, validated through theoretical analysis and simulations.
Contribution
It introduces a threshold-based policy for optimal data update decisions in systems balancing freshness and costs, with a closed-form formula for cost evaluation.
Findings
Optimal threshold-based policy minimizes total cost.
Closed-form formula for average cost under any threshold policy.
Simulation results show superior performance over baselines.
Abstract
In this paper, we consider a discrete-time information-update system, where a service provider can proactively retrieve information from the information source to update its data and users query the data at the service provider. One example is crowdsensing-based applications. In order to keep users satisfied, the application desires to provide users with fresh data, where the freshness is measured by the Age-of-Information (AoI). However, maintaining fresh data requires the application to update its database frequently, which incurs an update cost (e.g., incentive payment). Hence, there exists a natural tradeoff between the AoI and the update cost at the service provider who needs to make update decisions. To capture this tradeoff, we formulate an optimization problem with the objective of minimizing the total cost, which is the sum of the staleness cost (which is a function of the AoI)…
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Taxonomy
TopicsAge of Information Optimization · Cognitive Functions and Memory · Retirement, Disability, and Employment
