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CCS
2010
ACM

Assessing trust in uncertain information using Bayesian description logic

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Assessing trust in uncertain information using Bayesian description logic
Decision makers (humans or software agents alike) are faced with the challenge of examining large volumes of information originating from heterogeneous sources with the goal of ascertaining trust in various pieces of information. In this paper we argue (using examples) that traditional trust models are limited in their data model by assuming a pair-wise numeric rating between two entities (e.g., eBay recommendations, Netflix movie rating, etc). We present a novel trust computational model for rich, complex and uncertain information encoded using Bayesian Description Logics. We present security and scalability tradeoffs that arise in the new model, and the results of an evaluation of the first prototype implementation under a variety attack scenarios. Categories and Subject Descriptors: C.2.0 [General]: Security and protection General Terms: Trust Assessment
Achille Fokoue, Mudhakar Srivatsa, Robert Young
Added 10 Feb 2011
Updated 10 Feb 2011
Type Journal
Year 2010
Where CCS
Authors Achille Fokoue, Mudhakar Srivatsa, Robert Young
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