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Qualitative spatial reasoning under uncertainty in geographical information systems

机译:地理信息系统不确定性下的定性空间推理

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The capability of geographical information systems (GIS) to display images and analyse them is one of the most powerful features, because people have a very consistent ability to reason about visual features according to their own knowledge model. Usually the abilities of GIS are restricted in dealing with quantitative data only, so that they fail whenever exact matches cannot be found. A solution to this problem is not only to allow the quantitative information, but also qualitative one. Proximity factors such as 'close to' and 'far from' are included. The qualitative approach offers a more natural way for the user of the system to specify what he actually wants, by using the proximity operators. This paper is an attempt of integrating qualitative spatial reasoning into geographic information systems. The idea is to associate qualitative information with fuzzy sets and to use the values of these fuzzy sets for spatial reasoning. The authors are concerned with the problem of image interpretation, which stands for the geometric and semantic recognition of the objects contained in one image.
机译:地理信息系统(GIS)的能力显示图像并分析它们是最强大的功能之一,因为人们根据自己的知识模型具有非常一致的推理视觉功能的能力。通常,GIS的能力仅限于处理定量数据时,以便在无法找到完全匹配的情况下它们失败。对此问题的解决方案不仅可以允许定量信息,而且是定性的。包括“接近”和“远离”的接近因素。定性方法为系统的用户提供了一种更自然的方式,通过使用邻近运算符来指定他实际想要的东西。本文是一种将定性空间推理集成到地理信息系统中的尝试。该想法是将定性信息与模糊集合缔合,并使用这些模糊集的值进行空间推理。作者涉及图像解释问题,该问题代表了对一个图像中包含的对象的几何和语义识别。

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