scholarly journals Grey Model Optimized by Particle Swarm Optimization for Data Analysis and Application of Multi-Sensors

Sensors ◽  
2018 ◽  
Vol 18 (8) ◽  
pp. 2503 ◽  
Author(s):  
Chenming Li ◽  
Hongmin Gao ◽  
Junlin Qiu ◽  
Yao Yang ◽  
Xiaoyu Qu ◽  
...  

Data on the effective operation of new pumping station is scarce, and the unit structure is complex, as the temperature changes of different parts of the unit are coupled with multiple factors. The multivariable grey system prediction model can effectively predict the multiple parameter change of a nonlinear system model by using a small amount of data, but the value of its q parameters greatly influences the prediction accuracy of the model. Therefore, the particle swarm optimization algorithm is used to optimize the q parameters and the multi-sensor temperature data of a pumping station unit is processed. Then, the change trends of the temperature data are analyzed and predicted. Comparing the results with the unoptimized multi-variable grey model and the BP neural network prediction method trained under insufficient data conditions, it is proved that the relative error of the multi-variable grey model after optimizing the q parameters is smaller.

Author(s):  
Elvis Twumasi ◽  
Emmanuel Asuming Frimpong ◽  
Daniel Kwegyir ◽  
Denis Folitse

Following publication of the original article [1], the authors reported an error in the title and body text.


2010 ◽  
Vol 118-120 ◽  
pp. 541-545
Author(s):  
Qin Ming Liu ◽  
Ming Dong

This paper explores the grey model based PSO (particle swarm optimization) algorithm for anti-cauterization reliability design of underground pipelines. First, depending on underground pipelines’ corrosion status, failure modes such as leakage and breakage are studied. Then, a grey GM(1,1) model based PSO algorithm is employed to the reliability design of the pipelines. One important advantage of the proposed algorithm is that only fewer data is used for reliability design. Finally, applications are used to illustrate the effectiveness and efficiency of the proposed approach.


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