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ROSA: An Algebra for Rough Spatial Objects in Databases

机译:ROSA:数据库中粗糙空间对象的代数

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摘要

A fundamental data modeling problem in geographical information systems and spatial database systems refers to an appropriate treatment of the vagueness or indeterminacy features of spatial objects. Geographical applications often have to deal with spatial objects that cannot be adequately described by the determinate, crisp concepts exclusively available in these systems since these objects have an intrinsically indeterminate and vague nature. The goal of this paper is to show that rough set theory can be leveraged in an elegant manner to seamlessly model this kind of spatial data. Our approach introduces novel rough spatial data types for rough points, rough lines, and rough regions that can be employed as attribute types in database schemas. These data types are part of a data model called ROSA (ROugh Spatial Algebra). Their formal framework is based on already existing, general, exact models of crisp spatial data types, which simplifies the definition of the rough spatial model. In addition, we obtain executable specifications for the operations on rough spatial objects; these can be immediately used as implementations. This paper gives a formal definition of the three rough spatial data types as well as some basic operations.
机译:地理信息系统和空间数据库系统中的基本数据建模问题涉及对空间对象的模糊性或不确定性特征的适当处理。地理应用程序通常必须处理无法由这些系统专有的确定,清晰的概念充分描述的空间对象,因为这些对象具有内在的不确定性和模糊性。本文的目的是表明可以以一种优雅的方式利用粗糙集理论对这种空间数据进行无缝建模。我们的方法为粗糙点,粗糙线和粗糙区域引入了新颖的粗糙空间数据类型,这些数据可以用作数据库模式中的属性类型。这些数据类型是称为ROSA(鲁昂空间代数)的数据模型的一部分。他们的正式框架基于清晰的空间数据类型的已经存在的,通用的,精确的模型,从而简化了粗糙空间模型的定义。另外,我们获得了对粗糙空间物体进行操作的可执行规范;这些可以立即用作实现。本文对三种粗糙的空间数据类型以及一些基本操作给出了正式的定义。

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