Bayesian combination-based Web service QoS prediction method

A prediction method, web service technology, applied in special data processing applications, instruments, electrical digital data processing, etc., can solve problems such as excellent

Inactive Publication Date: 2015-11-11
HOHAI UNIV
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  • Claims
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AI Technical Summary

Problems solved by technology

A single model usually has good forecasting accuracy in a certain period of time, but various forecasting methods have special information characteristics and applicable occasions. At present, there is no algorithm that can maintain absolutely excellent forecasting performance under different conditions and at different times.

Method used

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  • Bayesian combination-based Web service QoS prediction method
  • Bayesian combination-based Web service QoS prediction method
  • Bayesian combination-based Web service QoS prediction method

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Embodiment Construction

[0034] In the following, the present invention will be further clarified with reference to specific examples. It should be understood that these examples are only used to illustrate the present invention and not to limit the scope of the present invention. After reading the present invention, those skilled in the art will understand various equivalent forms of the present invention. All the modifications fall within the scope defined by the appended claims of this application.

[0035] The Bayesian combined prediction method for Web service QoS provided by this embodiment includes two main parts: for random QoS attributes, neural network model (WNN), ARIMA (WARIMA) and ARIMAGARCA based on wavelet analysis are used for combined prediction, For stationary, trending, and periodic QoS attributes, K-nearest neighbor prediction model, RBF neural network model, and multiple regression analysis model are used for combined prediction.

[0036] To identify the characteristics of the time ser...

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Abstract

The present invention discloses a Bayesian combination-based Web service QoS prediction method, and proposes that a Bayesian combination prediction model predicts QoS. The method comprises: identifying a time-series feature; according to an identification result, selecting an appropriate basic prediction model; training the selected model; and performing prediction by using a loop structure of prediction-weight adjustment-prediction. In a prediction process, by adjusting again and again weights in a basic prediction model, a result approaches a model with optimal prediction effects, relatively good prediction precision is maintained. In order to verify a prediction result, QoS attributes such as a response time, a throughput and reliability are predicted; experimental results are compared by using two manners: precision analysis and effectiveness estimation; the experiment shows that, with time sequence samples being different in feature, the Bayesian combination prediction model can maintain high prediction precision, is close to an optimal prediction model, and exhibits better and more stable prediction performance.

Description

Technical field [0001] The invention relates to a Web service QoS prediction method based on Bayesian combination. Several combination models are used to predict time series, the results are evaluated through model evaluation standards, and the model weights are adjusted in time to optimize test results. Background technique [0002] Service-oriented systems are increasingly accessing third-party Web services through the Internet. Quality assurance and software maintenance are controlled by third parties, and software execution and management also depend on third parties. The execution capability and service quality of service-oriented systems are increasingly dependent on the services provided by third parties. However, in the complex and changeable Internet environment, this reliance on third-party services will bring uncertain problems and make the services unsatisfactory. QoS (Quality of Service, quality of service) requirements. Therefore, it is necessary to predict the qua...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G06F19/00
Inventor 张鹏程孙颍桃安纪存陈洁曾金伟韩晴
Owner HOHAI UNIV
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