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Truth Finding from Multiple Data Sources by Source Confidence Estimation

机译:通过信源置信度估计从多个数据源中发现真相

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The volume of data on the Web has been growing at a dramatic pace in recent years and people rely more and more on the Web to fulfill their information needs. Numerous different descriptions of the properties towards the same objects can be obtained from a variety of data sources. This will inevitably lead to data incompleteness, data conflicts and out-of-date information problems. These issues make truth discovery among multiple data sources non-trivial. However, most of previous works consider only one single property, or deal with different properties separately by ignoring several characteristics of the properties, which will often cause unexpected deviations. In this paper, we propose a modified method to find the most trustable source and identify the true information. Our goal is to minimize the distance between the true information and the overall observed descriptions through considering the accuracy and the coverage of all the data sources at the same time. The experiments on the real dataset demonstrate the efficacy of our method.
机译:近年来,Web上的数据量以惊人的速度增长,人们越来越依赖Web来满足其信息需求。可以从各种数据源获得针对相同对象的属性的许多不同描述。这将不可避免地导致数据不完整,数据冲突和过时的信息问题。这些问题使在多个数据源中发现真相变得不容易。但是,大多数先前的工作仅考虑一个属性,或者通过忽略属性的多个特征来分别处理不同的属性,这通常会导致意外的偏差。在本文中,我们提出了一种改进的方法来查找最可信赖的来源并识别真实信息。我们的目标是通过同时考虑所有数据源的准确性和覆盖范围,使真实信息与整体观察描述之间的距离最小。在真实数据集上的实验证明了我们方法的有效性。

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