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Authenticity verification on social data outsourcing

机译:社会数据外包的真实性验证

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摘要

In the social data transaction model, online social networks sell their collected social data to a third-party data service provider, which commonly resells such social data to data users for further mining potential information. However, the data service provider may not be trustworthy and collude with others to return fake data to users. To prevent such malicious activities, data users should verify the correctness and completeness of social data purchased from the data service provider to make sure that no data would tamper and no qualifying results would be omitted. Accordingly, we first propose an authenticity verification scheme, called FafeeDetection, for one-dimensional data query. To make our scheme becoming efficient, we further devise an enhanced probabilistic scheme FafeeDetection+. which takes partial vertices and neighbors with the identical profile value to generate auxiliary information. To evaluate the efficiency of our schemes, we utilize the real Twitter datasets with 1.6M twitters to perform the experiments. The Twitter with FakeDetection+, takes 69K edges (47M in FafeeDetection) into account to detect fake activities with a probability of more than 99%. For the computation overhead, the FafeeDetection+ scheme only consumes 27.9s (3.8% of that in FafeeDetection) to generate auxiliary information for a social graph with 1.6M twitters and their social network.
机译:在社交数据交易模型中,在线社交网络将其收集的社交数据销售给第三方数据服务提供商,这通常将这些社交数据转换为数据用户以获取进一步采矿潜在信息。但是,数据服务提供商可能不值得信赖,并与他人勾结以将假数据返回给用户。为防止此类恶意活动,数据用户应验证从数据服务提供商购买的社交数据的正确性和完整性,以确保不会篡改无数据,也不会省略合格结果。因此,我们首先提出了一种称为FAfeedEtection的真实性验证方案,用于一维数据查询。为了使我们的计划变得有效,我们进一步设计了增强的概率方案Fafeedetection +。其中占用的部分顶点和邻居具有相同的轮廓值以生成辅助信息。为了评估我们的计划的效率,我们利用具有1.6M的Twitters的真实Twitter数据集进行实验。带有Fakedetection +的推特+,需要69k边(FAFEDETECTECTECTECTECE)考虑到概率超过99%的假活动。对于计算开销,FAFEDETECTION +方案仅消耗27.9s(在FAFEDETECTECTECTION中的3.8%),以生成具有1.6M的吊带及其社交网络的社交图的辅助信息。

著录项

  • 来源
    《Computers & Security》 |2021年第1期|102077.1-102077.17|共17页
  • 作者单位

    College of Computer Science and Electronic Engineering Hunan University Changsha Hunan China;

    College of Computer Science and Electronic Engineering Hunan University Changsha Hunan China;

    College of Computer Science and Electronic Engineering Hunan University Changsha Hunan China;

    College of Computer Science and Electronic Engineering Hunan University Changsha Hunan China School of Basic Education Changsha Aeronautical Vocational and Technical College Changsha Hunan China;

    Department of Computer Science State University of New York New Paltz New York 12561 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Social data; Fake data; Fake detection; Authenticity verification; Social network;

    机译:社交数据;假数据;假检测;真实性验证;社交网络;

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