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Ontologies as Bayesian Networks for Space Debris

机译:作为空间碎片贝叶斯网络的本体

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摘要

Space debris is a rising problem in today's world. Because there is so much in space that is unknown, it is critical to eventually catalog every piece. Since there are many attributes and properties attached to space objects, it is preferable to use an ontological classification method. The information presented in the ontology can then be used to answer questions about space debris. A Bayesian network would accomplish that because of its quantitative nature. The similarities between ontologies and Bayesian networks, such as their architectures and their flexibility, make it possible to integrate an ontology into a Bayesian network. Image determination and object collision assessment were used as applications to check the viability of integrating ontologies and Bayesian networks. It was determined that ontologies and Bayesian networks are tools that when combined can result in new useful quantitative information.
机译:在当今世界,空间碎片是一个日益严重的问题。由于存在太多未知的空间,因此最终对每个零件进行分类至关重要。由于空间对象具有许多属性,因此最好使用本体分类方法。然后可以将本体中显示的信息用于回答有关空间碎片的问题。贝叶斯网络可以实现这一目标,因为它具有定量性。本体和贝叶斯网络之间的相似性,例如它们的体系结构和灵活性,使得将本体集成到贝叶斯网络中成为可能。图像确定和对象碰撞评估被用作检查集成本体和贝叶斯网络可行性的应用程序。可以确定的是,本体论和贝叶斯网络是组合在一起时可以产生新的有用定量信息的工具。

著录项

  • 作者

    Vasilieva Stephania;

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  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 en_US
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