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Assessment of semantic similarity between land use/land cover classification systems

机译:评估土地利用/土地覆被分类系统之间的语义相似性

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摘要

One difficulty in sharing datasets between research projects and research teams is variation in the semantic content of the data expressed as differences in categorization. One step towards achieving semantic interoperability is to have means to measure the degree of semantic similarity between existing datasets and the target categorization of the new study. A variety of environmental and urban analyses use land use/land cover data to describe the natural environment. This paper focuses on measuring semantic similarity between categories in different land use/land cover classification systems. A modified feature-based approach is employed. Semantic components of a category are weighted to emphasize critical features in the categories definition. A case study is presented to demonstrate how semantic similarity is measured between target categories in a specific study and categories already in use in existing land use/land cover classification systems.
机译:在研究项目和研究团队之间共享数据集的一个困难是数据的语义内容的变化,表示为分类差异。实现语义互操作性的第一步是拥有一种手段来测量现有数据集和新研究的目标分类之间的语义相似度。各种环境和城市分析都使用土地利用/土地覆盖数据来描述自然环境。本文着重于测量不同土地利用/土地覆被分类系统中类别之间的语义相似性。采用了改进的基于特征的方法。对类别的语义成分进行加权,以强调类别定义中的关键特征。提出了一个案例研究,以说明如何测量特定研究中的目标类别与现有土地利用/土地覆被分类系统中已经使用的类别之间的语义相似性。

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