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Profile Inference from Heterogeneous Data Fundamentals and New Trends

机译:异构数据基础知识和新趋势对配置文件的推断

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One of the essential steps in most business is to understand customers' preferences. In a data-centric era, profile inference is more and more relaying on mining increasingly accumulated and usually anonymous (protected) data. Personalized profile (preferences) of an anonymous user can even be recovered by some data technologies. The aim of the paper is to review some commonly used information retrieval techniques in recommendation systems and introduce new trends in heterogeneous information network based and knowledge graph based approaches. Then business developers can get some insights on what kind of data to collect as well as how to store and manage them so that better decisions can be made after analyzing the data and extracting the needed information.
机译:在大多数企业中,基本步骤之一就是了解客户的偏好。在以数据为中心的时代,配置文件推断越来越多地依赖于挖掘越来越多的,通常是匿名(受保护)数据的挖掘。某些数据技术甚至可以恢复匿名用户的个性化配置文件(首选项)。本文的目的是回顾推荐系统中一些常用的信息检索技术,并介绍基于异构信息网络和基于知识图的方法的新趋势。然后,业务开发人员可以洞悉要收集什么类型的数据以及如何存储和管理它们,以便在分析数据并提取所需的信息之后可以做出更好的决策。

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