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    Online Resource
    Online Resource
    Angle Publishing Co., Ltd. ; 2023
    In:  網際網路技術學刊 Vol. 24, No. 5 ( 2023-09), p. 1113-1121
    In: 網際網路技術學刊, Angle Publishing Co., Ltd., Vol. 24, No. 5 ( 2023-09), p. 1113-1121
    Abstract: 〈p〉Large amounts of noise and a lack of contextual domain knowledge lead to slow and inefficient cross-domain image learning. This paper proposes an image scenario spatial data classification model based on evidence-based behavioral logic, intervenes in image annotation through evidence-based dynamic knowledge graphs, and uses spatial similarity measurement to evaluate the effectiveness and robustness of the method. The results show that: 1) Organizing the dynamic knowledge graphs of contextual domain knowledge by behavioral logic can significantly improve the association efficiency of each model. 2) The calculation method of image scenario space comparison based on behavior evidence can decrypt the implicit knowledge of images and significantly improve the effectiveness of image scenario space interpretation. The research results are helpful to guide the design and implementation of cross-domain image interpretation systems and improve the efficiency of information sharing.〈/p〉 〈p〉 〈/p〉
    Type of Medium: Online Resource
    ISSN: 1607-9264 , 1607-9264
    Uniform Title: A Behaviorally Evidence-based Method for Computing Spatial Comparisons of Image Scenarios
    Language: Unknown
    Publisher: Angle Publishing Co., Ltd.
    Publication Date: 2023
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