用定量修正方法解决概率知识库中的不一致性

V. Nguyen, T. Tran, N. Nguyen, Do Kieu Loan Nguyen
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引用次数: 0

摘要

知识库中出现的不一致问题的解决是知识库合并过程中一个极其重要的阶段。在概率背景下,许多研究用不同的方法解决了概率知识库的不一致性问题。然而,这些先前的重点是通过采用最大熵原理或构建具有复杂爬行函数的一致性恢复器来解决PKB中恢复一致性的问题。我们发现很难找到爬行一致性恢复器中使用的函数。因此,寻找这些函数的过程可能会导致性能不佳。基于此,我们提出了PKB的不一致解决方案,我们考虑以更简单的方向修改处理不一致所涉及的功能。两种不一致求解器分别是均匀变形不一致求解器和联合变形不一致求解器。针对每个求解器,提出了一种求解PKB不一致性的算法。此外,还考虑并证明了每种算法的代价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Resolving Inconsistencies in Probabilistic Knowledge Bases by Quantitative Modification
Resolving the inconsistency that appears in knowledge bases is an extremely important stage in the process of merging knowledge bases. With probabilistic context, many studies have solved the inconsistency of a probabilistic knowledge base (PKB) with different approaches. However, these previous focus on addressing the problem of restoring consistency in a PKB by employing the principles of maximum entropy or building the consistency restorer with complex creeping functions. We discover that it is really difficult to find the functions that are utilized in the creeping consistency restorers. Therefore, the process of finding these functions may lead to a poor performance. Based on that, we proposed the inconsistency solvers for a PKB, where we consider revising the functions involved in handling the inconsistency in a simpler direction. Two the inconsistency solvers are the equitable deformation inconsistency solver and the amerced deformation inconsistency solver. Corresponding to each solver, an algorithm to solve inconsistencies in a PKB is proposed. Moreover, the cost of each algorithm also are considered and proved.
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