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Selection of Concept Detectors for Video Search by Ontology-Enriched Semantic Spaces

机译:通过本体丰富的语义空间选择用于视频搜索的概念检测器

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This paper describes the construction and utilization of two novel semantic spaces, namely ontology-enriched semantic space (OSS) and ontology-enriched orthogonal semantic space (OS2), to facilitate the selection of concept detectors for video search. These two semantic spaces are enriched with ontology knowledge, while emphasizing consistent and uniform comparison of ontological relatedness among concepts for query-to-concept mapping. OS2, in addition to being a linear space like OSS, also guarantees orthogonality of the semantic space. Compared with other ontology reasoning measures, both spaces are capable of providing platforms that offer a global view of concept inter-relatedness, by allowing evaluation of concept similarity in metric spaces. We simulate OSS and OS2 by using LSCOM concepts and experiment search effectiveness with VIREO-374 concept detectors. Empirical observations indicate that the proposed semantic spaces enable more effective selection of concept detectors than eight other existing ontology measures. OS2, in particular, is better in providing a viable and reasonable solution for fusion of multiple concept detectors.
机译:本文描述了两种新颖的语义空间的构建和利用,即本体扩展的语义空间(OSS)和本体扩展的正交语义空间(OS2),以方便选择用于视频搜索的概念检测器。这两个语义空间充实了本体知识,同时强调了用于查询到概念映射的概念之间本体相关性的一致性和统一性比较。 OS2除了像OSS这样的线性空间外,还保证了语义空间的正交性。与其他本体推理措施相比,这两个空间都能够提供平台,通过评估度量空间中的概念相似性来提供概念相互关联的全局视图。我们使用LSCOM概念模拟OSS和OS2,并使用VIREO-374概念探测器进行实验搜索。经验观察表明,与其他八种现有的本体度量相比,所提出的语义空间能够更有效地选择概念检测器。特别是OS2,在为多概念检测器的融合提供可行且合理的解决方案方面更好。

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