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Semantics-enabled framework for knowledge discovery from Earth observation data archives

机译:启用语义的框架,可从地球观测数据档案中发现知识

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Earth observation data have increased significantly over the last decades with satellites collecting and transmitting to Earth receiving stations in excess of 3 TB of data a day. This data acquisition rate is a major challenge to the existing data exploitation and dissemination approaches. The lack of content- and semantic-based interactive information searching and retrieval capabilities from the image archives is an impediment to the use of the data. In this paper, we describe a framework we have developed [Intelligent Interactive Image Knowledge Retrieval (I/sup 3/KR)] that is built around a concept-based model using domain-dependant ontologies. In this framework, the basic concepts of the domain are identified first and generalized later, depending upon the level of reasoning required for executing a particular query. We employ an unsupervised segmentation algorithm to extract homogeneous regions and calculate primitive descriptors for each region based on color, texture, and shape. We initially perform an unsupervised classification by means of a kernel principal components analysis method, which extracts components of features that are nonlinearly related to the input variables, followed by a support vector machine classification to generate models for the object classes. The assignment of concepts in the ontology to the objects is achieved automatically by the integration of a description logics-based inference mechanism, which processes the interrelationships between the properties held in the specific concepts of the domain ontology. The framework is exercised in a coastal zone domain.
机译:在过去的几十年中,随着每天收集和传输到地球接收站的数据超过3 TB,对地观测数据已大大增加。这种数据采集速率是对现有数据利用和传播方法的主要挑战。从图像档案库中缺少基于内容和语义的交互式信息搜索和检索功能,这是数据使用的障碍。在本文中,我们描述了我们开发的[智能交互式图像知识检索(I / sup 3 / KR)]框架,该框架基于使用领域相关本体的基于概念的模型而构建。在此框架中,根据执行特定查询所需的推理级别,首先确定领域的基本概念,然后再进行概括。我们采用无监督分割算法来提取同质区域,并根据颜色,纹理和形状为每个区域计算原始描述符。我们首先通过内核主成分分析方法执行无监督分类,该方法提取与输入变量非线性相关的特征的成分,然后通过支持向量机分类来生成对象类的模型。本体中的概念到对象的分配是通过集成基于描述逻辑的推理机制自动完成的,该推理机制处理域本体的特定概念中所保存的属性之间的相互关系。该框架是在沿海地区执行的。

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