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A Correlation-Preserving Fingerprinting Technique for Categorical Data in Relational Databases

机译:关系数据库中的分类数据的相关性指纹技术

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Fingerprinting is a method of embedding a traceable mark into digital data, to verify the owner and identify the recipient a certain copy of a data set has been released to. This is crucial when releasing data to third parties, especially if it involves a fee, or if the data is of sensitive nature, due to which further sharing and leaks should be discouraged and deterred from. Fingerprinting and watermarking are well explored in the domain of multimedia content, such as images, video, or audio. The domain of relational databases is explored specifically for numerical data types, for which most state-of-art techniques are designed. However, many datasets also, or even exclusively, contain categorical data. We, therefore, propose a novel approach for fingerprinting categorical type of data, focusing on preserving the semantic relations between attributes, and thus limiting the perceptibility of marks, and the effects of the fingerprinting on the data quality and utility. We evaluate the utility, especially for machine learning tasks, as well as the robustness of the fingerprinting scheme, by experiments on benchmark data sets.
机译:指纹识别是一种将可追踪标记嵌入数字数据的方法,以验证所有者并识别收件人的某些数据集的副本已释放到。这在将数据释放到第三方时至关重要,特别是如果它涉及费用,或者如果数据具有敏感性质,则应气馁和阻止进一步分享和泄漏。在多媒体内容的域中探讨了指纹和水印,例如图像,视频或音频。专门针对数值数据类型探索关系数据库的域,用于设计最先进的技术。但是,许多数据集也甚至专门包含分类数据。因此,我们提出了一种用于指纹分类数据类型的新方法,专注于保留属性之间的语义关系,从而限制标记的可见性,以及指纹对数据质量和实用程序的影响。通过基准数据集的实验,我们评估该实用程序,特别是对于机器学习任务,以及指纹方案的鲁棒性。

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