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A Trust-Based Agent Learning Model for Service Composition in Mobile Cloud Computing Environments

delete2019-01-01
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李文娟 cover
李文娟 (Wenjuan Li)
曹健 (Jian Cao) *
胡克用 (Keyong Hu)
徐杰 cover
徐杰 (Jie Xu)
R
Rajkumar Buyya
DOI:10.1109/ACCESS.2019.2904081delete
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Abstract

Abstract

En 中文
Mobile cloud computing has the features of resource constraints, openness, and uncertainty which leads to the high uncertainty on its quality of service (QoS) provision and serious security risks. Therefore, when faced with complex service requirements, an efficient and reliable service composition approach is extremely important. In addition, preference learning is also a key factor to improve user experiences. In order to address them, this paper introduces a three-layered trust-enabled service composition model for the mobile cloud computing systems. Based on the fuzzy comprehensive evaluation method, we design a novel and integrated trust management model. Service brokers are equipped with a learning module enabling them to better analyze customers' service preferences, especially in cases when the details of a service request are not totally disclosed. Because traditional methods cannot totally reflect the autonomous collaboration between the mobile cloud entities, a prototype system based on the multi-agent platform JADE is implemented to evaluate the efficiency of the proposed strategies. The experimental results show that our approach improves the transaction success rate and user satisfaction.
Keywords:
Mobile cloud computing
service composition
trust management
user preference learning
multi-agent technology
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Journal

IEEE Access cover
IEEE Access
IF:
3.6
Papers:
9.8W
Citations:
29.4W

Organization

H
hangzhou normal university
Scholars:
1.3W
Papers: 7.8K
Citations: 8
S
shanghai jiao tong university
Scholars:
15.6W
Papers: 11.6W
Citations: 159