Cover image for Computational trust models and machine learning
Title:
Computational trust models and machine learning
Author:
Liu, Xin (Mathematician), editor.
ISBN:
9780429159480
Physical Description:
1 online resource
Series:
Chapman & Hall/CRC machine learning & pattern recognition series

Chapman & Hall/CRC machine learning & pattern recognition series.
General Note:
A Chapman and Hall book.
Contents:
1. Introduction -- 2. Trust in online communities -- 3. Judging the veracity of claims and reliability of sources -- 4. Web credibility assessment -- 5. Trust-aware recommender systems -- 6. Biases in trust-based systems.
Abstract:
This book provides an introduction to computational trust models from a machine learning perspective. After reviewing traditional computational trust models, it discusses a new trend of applying formerly unused machine learning methodologies, such as supervised learning. The application of various learning algorithms, such as linear regression, matrix decomposition, and decision trees, illustrates how to translate the trust modeling problem into a (supervised) learning problem. The book also shows how novel machine learning techniques can improve the accuracy of trust assessment compared to traditional approaches-- Provided by publisher.
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E-Book 543108-1001 Q342 .C675 2015
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