Table interpretation of the temporal description logic LTLALC

V. Reznichenko, I. Chystiakova
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Abstract

Description logics are widely used to describe and represent knowledge in the Semantic Web. This is a modern and powerful mechanism that provides the possibility of extracting knowledge from already existing ones. Thanks to this, conceptual of subject areas modeling has become one of the fields of application of descriptive logics, taking into account the use of inference mechanisms. Conceptual modeling is used to create databases and knowledge bases. A key issue of the subject area modeling is the ability to monitor the dynamics of changes in the state of the subject area over time. It is necessary to describe not only the current actual state of the database (knowledge bases), but also the background. Temporal descriptive logics are used to solve this problem. They have the same set of algorithmic problems that are presented in conventional descriptive logics, but to them are added questions related to the description of knowledge in time. This refers to the form of time (continuous or discrete), time structure (moments of time, intervals, chains of intervals), time linearity (linear or branched), domain (present, past, future), the concept of “now”, the method of measurement, etc. An urgent task today is to create an algorithm for the temporal interpretation of conventional descriptive logics. That is, to show a way in which temporal descriptive logic can be applied to ordinary descriptive logic. The paper presents an algorithm for temporal interpretation of LTL into ALC. Linear, unbranched time is chosen for the description goal. It is presented in the form of a whole temporal axis with a given linear order on it. Only the future tense is considered. The algorithm contains graphic notations of LTL application in ALC: concepts, concept constructors, roles, role constructors, TBox and ABox. Numerous examples are used to illustrate the application of the algorithm.
表解释时态描述逻辑LTLALC
在语义Web中,描述逻辑被广泛用于描述和表示知识。这是一种现代而强大的机制,提供了从已经存在的知识中提取知识的可能性。因此,考虑到推理机制的使用,主题领域的概念建模已经成为描述性逻辑的应用领域之一。概念建模用于创建数据库和知识库。主题领域建模的一个关键问题是能够监视主题领域状态随时间变化的动态。不仅需要描述数据库(知识库)的当前实际状态,还需要描述背景。时间描述性逻辑用于解决这个问题。它们具有与传统描述性逻辑相同的算法问题集,但它们增加了与时间描述知识相关的问题。这是指时间的形式(连续或离散),时间结构(时间时刻,间隔,间隔链),时间线性(线性或分支),领域(现在,过去,未来),“现在”的概念,测量方法等。当前的一项紧迫任务是为传统描述性逻辑的时间解释创建一种算法。也就是说,展示一种将时间描述性逻辑应用于普通描述性逻辑的方法。本文提出了一种将LTL时态解释为ALC的算法。我们选择线性的、无分支的时间作为描述目标。它以一个完整的时间轴的形式呈现,在它上面有一个给定的线性顺序。只考虑将来时。该算法包含LTL在ALC中应用的图形符号:概念、概念构造函数、角色、角色构造函数、TBox和ABox。通过实例说明了该算法的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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