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Method and system for building a decision-tree classifier from privacy-preserving data

机译:从隐私保护数据构建决策树分类器的方法和系统

摘要

A system and method for mining data while preserving a user's privacy includes perturbing user-related information at the user's computer and sending the perturbed data to a Web site. At the Web site, perturbed data from many users is aggregated, and from the distribution of the perturbed data, the distribution of the original data is reconstructed, although individual records cannot be reconstructed. Based on the reconstructed distribution, a decision tree classification model or a Naive Bayes classification model is developed, with the model then being provided back to the users, who can use the model on their individual data to generate classifications that are then sent back to the Web site such that the Web site can display a page appropriately configured for the user's classification. Or, the classification model need not be provided to users, but the Web site can use the model to, e.g., send search results and a ranking model to a user, with the ranking model being used at the user computer to rank the search results based on the user's individual classification data.
机译:一种在保留用户隐私的同时挖掘数据的系统和方法,包括在用户计算机上干扰与用户有关的信息,并将干扰后的数据发送到网站。在Web站点上,来自许多用户的扰动数据被汇总,并且从扰动数据的分布中,原始数据的分布得以重建,尽管无法重建单个记录。基于重构的分布,开发了决策树分类模型或Naive Bayes分类模型,然后将该模型提供给用户,用户可以使用该模型对他们的个人数据生成分类,然后将其发送回给用户。网站,以便该网站可以显示为用户分类适当配置的页面。或者,不必向用户提供分类模型,但是网站可以使用该模型,例如,将搜索结果和排名模型发送给用户,其中该排名模型在用户计算机上用于对搜索结果进行排名根据用户的个人分类数据。

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