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Trustworthiness Assessment of Knowledge on the Semantic Sensor Web by Provenance Integration

机译:来源集成对语义传感器网上知识的可信度评估

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Knowledge represented on the Semantic Sensor Web originates from different datasets which are often a collection or aggregation of other sources. The SSW is dynamic, open and distributed, so the datasets are of varying quality and completeness. Consumers need to be provided with a level of trustworthiness of this knowledge to determine its relevance and usefulness. Interpretation of provenance (detailed information about the origin of data - held in metadata) is necessary in order to analyse how knowledge came into existence and measure its trustworthiness. However there are challenges in interpreting the provenance in a uniform way, because different data providers use different processes to manipulate the data and different annotation techniques to provide metadata. Although there are methods for retrieving provenance, knowledge consumers are left with the responsibility of assessing the trustworthiness of discovered knowledge dependent on how they see it fitting their application. This paper proposes a meta-knowledge ontology to align the concepts and properties of existing provenance schemas and ontologies. The meta-provenance ontology enables common interpretation of different provenances, and hence their integration. This paper also presents a trustworthiness assessment model based on integrating provenance. This model provides a function for the knowledge consumer to choose the relevant provenance attributes and allows for ranking of their importance. This provides a reliable mechanism for measuring trustworthiness, as only attributes relevant to the consumer are used.
机译:语义传感器Web上表示的知识源自不同的数据集,这些数据集通常是其他来源的集合或聚合。 SSW是动态,开放和分布式的,因此数据集具有不同的质量和完整性。需要为消费者提供一定程度的该知识的可信度,以确定其相关性和有用性。为了分析知识如何形成并衡量其可信度,有必要对出处进行解释(有关数据来源的详细信息-保留在元数据中)。但是,以统一的方式解释来源存在挑战,因为不同的数据提供者使用不同的过程来操纵数据,并且使用不同的注释技术来提供元数据。尽管有一些检索来源的方法,但是知识消费者有责任根据发现的知识如何适合其应用来评估发现的知识的可信度。本文提出了一种元知识本体,以统一现有出处图式和本体的概念和属性。元出处本体可以对不同出处进行通用解释,从而实现它们的集成。本文还提出了一种基于集成来源的可信度评估模型。该模型为知识消费者提供了一种选择相关出处属性的功能,并可以对其重要性进行排名。由于仅使用了与消费者有关的属性,因此这提供了一种用于测量信任度的可靠机制。

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