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Grid workflow validation using ontology-based tacit knowledge: A case Study for quantitative remote sensing applications

delete2017-01-01
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PRE
AI
刘
刘嘉 (Jia Liu)
L
Longli Liu
Y
Yong Xue *
J
Jing Dong
胡引翠 cover
胡引翠 (Yingcui Hu) *
R
Richard Hill
李
李驰 (Chi Li)
DOI:10.1016/j.cageo.2016.10.002delete
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Abstract

Abstract

En 中文
Workflow for remote sensing quantitative retrieval is the bridge between Grid services and Grid-enabled application of remote sensing quantitative retrieval. Workflow averts low-level implementation details of the Grid and hence enables users to focus on higher levels of application. The workflow for remote sensing quantitative retrieval plays an important role in remote sensing Grid and Cloud computing services, which can support the modelling, construction and implementation of large-scale complicated applications of remote sensing science. The validation of workflow is important in order to support the large-scale sophisticated scientific computation processes with enhanced performance and to minimize potential waste of time and resources. To research the semantic correctness of user-defined workflows, in this paper, we propose a workflow validation method based on tacit knowledge research in the remote sensing domain. We first discuss the remote sensing model and metadata. Through detailed analysis, we then discuss the method of extracting the domain tacit knowledge and expressing the knowledge with ontology. Additionally, we construct the domain ontology with Protege. Through our experimental study, we verify the validity of this method in two ways, namely data source consistency error validation and parameters matching error validation.
Keywords:
Workflow
Validation
Ontology
Tacit knowledge
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C
Computers and Geosciences
IF:
4.4
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the institute of remote sensing & digital earth, cas
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640
Papers: 581
Citations: 1
C
china institute of water resources & hydropower research
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Papers: 2.9K
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University of Derby
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Papers: 1.5K
Citations: 1.8K
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chinese academy of sciences
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Papers: 45.0W
Citations: 704
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