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An Ontology-Based Reasoning Framework for Querying Satellite Images for Disaster Monitoring

机译:基于本体的推理框架查询灾害监测卫星图像

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摘要

This paper presents a framework in which satellite images are classified and augmented with additional semantic information to enable queries about what can be found on the map at a particular location, but also about paths that can be taken. This is achieved by a reasoning framework based on qualitative spatial reasoning that is able to find answers to high level queries that may vary on the current situation. This framework called SemCityMap, provides the full pipeline from enriching the raw image data with rudimentary labels to the integration of a knowledge representation and reasoning methods to user interfaces for high level querying. To illustrate the utility of SemCityMap in a disaster scenario, we use an urban environment—central Stockholm—in combination with a flood simulation. We show that the system provides useful answers to high-level queries also with respect to the current flood status. Examples of such queries concern path planning for vehicles or retrieval of safe regions such as “find all regions close to schools and far from the flooded area”. The particular advantage of our approach lies in the fact that ontological information and reasoning is explicitly integrated so that queries can be formulated in a natural way using concepts on appropriate level of abstraction, including additional constraints.
机译:本文提出了一个框架,在该框架中,对卫星图像进行分类并添加了附加的语义信息,从而可以查询在特定位置的地图上可以找到的内容,以及可以采取的路径。这是通过基于定性空间推理的推理框架实现的,该框架能够找到针对当前情况可能有所不同的高级查询的答案。这个称为SemCityMap的框架提供了完整的管道,从使用原始标签丰富原始图像数据到将知识表示和推理方法集成到用户界面以进行高级查询。为了说明SemCityMap在灾难情况下的实用性,我们结合斯德哥尔摩模拟与市区环境(斯德哥尔摩市中心)一起使用。我们表明,该系统还针对当前洪水状态为高级查询提供了有用的答案。此类查询的示例涉及车辆的路径规划或安全区域的检索,例如“查找靠近学校且远离洪灾区的所有区域”。我们的方法的特殊优势在于,本体信息和推理已明确集成,因此可以使用适当抽象级别的概念(包括附加约束)以自然的方式提出查询。

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