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Probabilistic Data Exchange

机译:概率数据交换

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摘要

The work reported here lays the foundations of data exchange in the presence of probabilistic data. This requires rethinking the very basic concepts of traditional data exchange, such as solution, universal solution, and the certain answers of target queries. We develop a framework for data exchange over probabilistic databases, and make a case for its coherence and robustness. This framework applies to arbitrary schema mappings, and finite or countably infinite probability spaces on the source and target instances. After establishing this framework and formulating the key concepts, we study the application of the framework to a concrete and practical setting where probabilistic databases are compactly encoded by means of annotations formulated over random Boolean variables. In this setting, we study the problems of testing for the existence of solutions and universal solutions, materializing such solutions, and evaluating target queries (for unions of conjunctive queries) in both the exact sense and the approximate sense. For each of the problems, we carry out a complexity analysis based on properties of the annotation, in various classes of dependencies. Finally, we show that the framework and results easily and completely generalize to allow not only the data, but also the schema mapping itself to be probabilistic.
机译:此处报告的工作为存在概率数据的情况下的数据交换奠定了基础。这需要重新考虑传统数据交换的基本概念,例如解决方案,通用解决方案以及目标查询的某些答案。我们开发了一个概率数据库上的数据交换框架,并为其一致性和鲁棒性提供了理由。该框架适用于任意模式映射,以及源实例和目标实例上的有限或可计数的无限概率空间。建立此框架并提出关键概念之后,我们将研究该框架在具体和实际环境中的应用,在该环境中,概率数据库通过在随机布尔变量上标注的注释进行紧凑编码。在这种情况下,我们研究在精确意义和近似意义上测试解决方案和通用解决方案是否存在,具体化此类解决方案以及评估目标查询(对于联合查询的并集)的问题。对于每个问题,我们都基于注释的属性(在各种依赖关系中)进行复杂度分析。最后,我们证明了框架和结果可以轻松,完全地推广,不仅允许数据而且允许模式映射本身具有概率性。

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