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Mitigating Malicious Updates: Prevention of Insider Threat to Databases

机译:缓解恶意更新:预防对数据库的内幕威胁

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Insider threats cause serious damage to data in any organization and is considered as a grave issue. In spite of the presence of threat prevention mechanisms, insiders can continue to attack a database by figuring out the dependency relationships among data items. Thus, examining write operations performed by an insider by taking advantage of dependencies aids in mitigating insider threats. We have developed two attack prevention models, which involve logs and dependency graphs respectively, to monitor data items and prevent malicious operations on them. The developed algorithms have been implemented on a simulated database and the results show that the models effectively mitigate insider threats arising from write operations.
机译:内幕威胁对任何组织中的数据造成严重损害,被认为是一个严重的问题。尽管存在威胁预防机制,但内部人员可以通过弄清楚数据项之间的依赖关系来继续攻击数据库。因此,通过利用依赖性内幕威胁来检查内部人员执行的写操作。我们开发了两种攻击预防模型,分别涉及日志和依赖图,以监控数据项并防止对其进行恶意操作。已经在模拟数据库中实现了发达的算法,结果表明模型有效地减轻了从写操作产生的内幕威胁。

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