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Collaborative Web Service QoS Prediction via Neighborhood Integrated Matrix Factorization

Published: 01 July 2013 Publication History

Abstract

With the increasing presence and adoption of web services on the World Wide Web, the demand of efficient web service quality evaluation approaches is becoming unprecedentedly strong. To avoid the expensive and time-consuming web service invocations, this paper proposes a collaborative quality-of-service (QoS) prediction approach for web services by taking advantages of the past web service usage experiences of service users. We first apply the concept of user-collaboration for the web service QoS information sharing. Then, based on the collected QoS data, a neighborhood-integrated approach is designed for personalized web service QoS value prediction. To validate our approach, large-scale real-world experiments are conducted, which include 1,974,675 web service invocations from 339 service users on 5,825 real-world web services. The comprehensive experimental studies show that our proposed approach achieves higher prediction accuracy than other approaches. The public release of our web service QoS data set provides valuable real-world data for future research.

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  • (2024)Space-Time-Aware Proactive QoS Monitoring for Mobile Edge ComputingIEEE Transactions on Network and Service Management10.1109/TNSM.2024.342484721:5(5662-5676)Online publication date: 1-Oct-2024
  • (2024)TPMCF: Temporal QoS Prediction Using Multi-Source Collaborative FeaturesIEEE Transactions on Network and Service Management10.1109/TNSM.2024.339542821:4(3945-3955)Online publication date: 3-May-2024
  • (2024)Temporal pattern-aware QoS prediction by Biased Non-negative Tucker Factorization of tensorsNeurocomputing10.1016/j.neucom.2024.127447582:COnline publication date: 14-May-2024
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  1. Collaborative Web Service QoS Prediction via Neighborhood Integrated Matrix Factorization

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    Published In

    cover image IEEE Transactions on Services Computing
    IEEE Transactions on Services Computing  Volume 6, Issue 3
    July 2013
    140 pages

    Publisher

    IEEE Computer Society

    United States

    Publication History

    Published: 01 July 2013

    Author Tags

    1. Accuracy
    2. Collaboration
    3. Predictive models
    4. QoS prediction
    5. Quality of service
    6. Throughput
    7. Web service
    8. Web services
    9. matrix factorization
    10. user-collaboration

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    • (2024)Space-Time-Aware Proactive QoS Monitoring for Mobile Edge ComputingIEEE Transactions on Network and Service Management10.1109/TNSM.2024.342484721:5(5662-5676)Online publication date: 1-Oct-2024
    • (2024)TPMCF: Temporal QoS Prediction Using Multi-Source Collaborative FeaturesIEEE Transactions on Network and Service Management10.1109/TNSM.2024.339542821:4(3945-3955)Online publication date: 3-May-2024
    • (2024)Temporal pattern-aware QoS prediction by Biased Non-negative Tucker Factorization of tensorsNeurocomputing10.1016/j.neucom.2024.127447582:COnline publication date: 14-May-2024
    • (2024)AERQP: adaptive embedding representation-based QoS prediction for web service recommendationThe Journal of Supercomputing10.1007/s11227-023-05582-980:3(3042-3065)Online publication date: 1-Feb-2024
    • (2024)ARIR: an intent recognition-based approach for API recommendationCluster Computing10.1007/s10586-024-04520-527:8(10819-10832)Online publication date: 1-Nov-2024
    • (2024)Clustering-Based Diversity in Service RecommendationWeb Information Systems Engineering – WISE 202410.1007/978-981-96-0570-5_23(312-326)Online publication date: 2-Dec-2024
    • (2024)HTGTransactions on Emerging Telecommunications Technologies10.1002/ett.495135:3Online publication date: 11-Mar-2024
    • (2023)Spatial Context-Aware Time-Series Forecasting for QoS PredictionIEEE Transactions on Network and Service Management10.1109/TNSM.2023.325051220:2(918-931)Online publication date: 1-Jun-2023
    • (2023)Toward Effective Personalized Service QoS Prediction From the Perspective of Multi-Task LearningIEEE Transactions on Network and Service Management10.1109/TNSM.2023.323634820:3(2587-2597)Online publication date: 1-Sep-2023
    • (2023)Accurately Predicting Quality of Services in IoT via Using Self-Attention Representation and Deep Factorization MachinesIEEE Transactions on Intelligent Transportation Systems10.1109/TITS.2023.327941224:11(13276-13285)Online publication date: 1-Nov-2023
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