网络物理系统的数据定价与隐私损失补偿:基于 Stackelberg 博弈的方法

IF 0.9 Q4 TELECOMMUNICATIONS
Ming Yang, Honglin Feng, Xin Wang, Xiaoming Wu, Yunfei Wang, Chuanxu Ren
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引用次数: 0

摘要

网络物理系统中传感器的集成催生了数据市场,数据所有者可以将其传感数据出售给潜在买家。然而,在此类市场中确定最佳数据价格是一个复杂的问题,需要仔细考虑所有相关方的利益,以及数据卖方的潜在隐私损失。考虑到隐私损失,本文为数据卖方提出了一个公平补偿模型,并将定价问题表述为斯泰克尔伯格博弈。本文开发了一种自动数据定价算法,可计算出数据卖方和买方共同利益最大化的最优价格,其中数据卖方的隐私损失可得到合理补偿。数值模拟验证了所提出的定价模型在平衡收益和隐私损失方面的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data pricing with privacy loss compensation for cyber-physical systems: A Stackelberg game based approach

The integration of sensors in cyber-physical systems has given rise to data markets, where data owners can offer their sensing data for sale to potential buyer. However, determining the optimal data price in such markets is a complex issue, which demands a careful consideration of the interests of all parties involved, as well as the potential privacy loss for data sellers. By taking privacy loss into account, this paper proposes a fair compensation model for data sellers and formulates the pricing problem as a Stackelberg game. An automatic data pricing algorithm is developed to calculate the optimal price maximizing the joint benefits of the data sellers and the buyer where the privacy loss of the data sellers are compensated reasonably. Numerical simulations validate the effectiveness of the proposed pricing model in balancing benefits and privacy loss.

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