具有独立单元格的概率数据库的一致性

Amir Gilad, Aviram Imber, B. Kimelfeld
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引用次数: 1

摘要

具有属性级不确定性的概率数据库由一些关系组成,其中某些属性的单元格可能包含概率分布,而不是确定性内容。这样的数据库隐式或显式地出现在噪声操作的上下文中,例如缺失数据输入,我们自动填充缺失值;列预测,我们预测未知属性;数据库清理(和修复),由于检测到错误或违反完整性约束,我们替换原始值。我们研究了在存在完整性约束的情况下关于单元值选择问题的计算复杂性。更准确地说,我们关注功能依赖并研究三个问题:(1)确定约束是否可以通过任何值的选择来满足,(2)找到最可能的选择,(3)计算满足约束的概率。这些问题的数据复杂性是由功能依赖集和不确定属性集合的组合决定的。我们对几类约束给出了可处理和难以处理的复杂性的完整分类,包括单个依赖、匹配约束和一元功能依赖。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Consistency of Probabilistic Databases with Independent Cells
A probabilistic database with attribute-level uncertainty consists of relations where cells of some attributes may hold probability distributions rather than deterministic content. Such databases arise, implicitly or explicitly, in the context of noisy operations such as missing data imputation, where we automatically fill in missing values, column prediction, where we predict unknown attributes, and database cleaning (and repairing), where we replace the original values due to detected errors or violation of integrity constraints. We study the computational complexity of problems that regard the selection of cell values in the presence of integrity constraints. More precisely, we focus on functional dependencies and study three problems: (1) deciding whether the constraints can be satisfied by any choice of values, (2) finding a most probable such choice, and (3) calculating the probability of satisfying the constraints. The data complexity of these problems is determined by the combination of the set of functional dependencies and the collection of uncertain attributes. We give full classifications into tractable and intractable complexities for several classes of constraints, including a single dependency, matching constraints, and unary functional dependencies.
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