2020
DOI: 10.1142/s0218488520500038
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Semantic Provenance Based Trustworthy Users Classification on Book-Based Social Network using Fuzzy Decision Tree

Abstract: As web-based social network allows anyone to post the content without any restriction, the trustworthiness of the content creator plays an important role before using the content. An effiective way to find the trustworthiness is, by analyzing the web resources related to the content creator. Therefore the trustworthiness is assessed using the provenance based ontological model called W7 model. Since it is a real time data, the computed trust for each reviewer using the ontological model is uncertain and vague.… Show more

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Cited by 8 publications
(4 citation statements)
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“…e model pruning rules were authenticity, and the evaluation indexes such as classification accuracy, precision, recall rate, rule generation number, and time complexity showed that the proposed learning model had better performance [7].…”
Section: Introductionmentioning
confidence: 92%
“…e model pruning rules were authenticity, and the evaluation indexes such as classification accuracy, precision, recall rate, rule generation number, and time complexity showed that the proposed learning model had better performance [7].…”
Section: Introductionmentioning
confidence: 92%
“…As the name suggests, the measured party actively obtains the specific browsing data of the measured party by sending data packets, so that the browsing records and interested video content of the measured party can be obtained quickly, conveniently, and directly. Therefore, the active measurement method has strong operability and simple, flexible, and direct operation (Teekaraman et al) [ 8 ]. Passive measurement does not need to actively send data packets back to the user but directly pulls the required data from the network server through the browsing records of the network and the network characteristics on the statistical link of the background data packets.…”
Section: Related Workmentioning
confidence: 99%
“…The fields collected from the social network are given in table The collected data is preprocessed and from this the trust score of each reviewer is computed using W7 provenance model [22]. Then, using DoT pruned Fuzzy Decision Tree (FDT) classifier [7] the reviewers are classified and fuzzy rules were generated. Finally, fuzzy rules are combined with a target user's request to perform recommendation.…”
Section: Proposed Recommender Systemmentioning
confidence: 99%