DocumentCode :
2337889
Title :
IA-BP optimal algorithm in measuring tobacco moisture content with resonant microwave sensor
Author :
Jiang, Yu ; Cao, Jun ; Liu, Jiu-Qing ; Yang, Guo-hui
Author_Institution :
Electromech. Eng. Coll., Northeast Forestry Univ., Harbin, China
Volume :
8
fYear :
2005
fDate :
18-21 Aug. 2005
Firstpage :
4744
Abstract :
BP algorithm has been widely used in calibrating measurement results detected by microwave resonator for improvement of accuracy. Conventional BP algorithm tends to get into infinitesimal locally, which worsens the stability of the measurement accuracy. An evolutionary neural network model based on IA-BP optimal algorithm is proposed in this paper. In the model, IA algorithm is first used for global search and then BP algorithm for local search. Experiments indicated that the IA-BP optimal algorithm effectively avoid getting into infinitesimal locally and has the merits of high prediction precision, rapid convergence, global superiority and accuracy for optimization, which improves the measurement accuracy with the mean squared error 0.0125, the mean absolute error 0.0715, the mean relative error 0.1186 and the certain coefficient 0.9965 between the predicted moisture content and the real value.
Keywords :
backpropagation; mean square error methods; microwave detectors; microwave measurement; moisture measurement; neural nets; optimisation; resonators; tobacco industry; IA-BP optimal algorithm; evolutionary neural network; mean absolute error; mean relative error; mean squared error; microwave resonator; prediction precision; resonant microwave sensor; tobacco moisture content measurement; Coaxial components; Electromagnetic fields; Electromagnetic measurements; Linear regression; Measurement errors; Microwave measurements; Microwave sensors; Moisture measurement; Neural networks; Resonance; IA-BP optimal algorithm; evolutionary neural network; moisture content measurement; open resonant microwave moisture sensors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Machine Learning and Cybernetics, 2005. Proceedings of 2005 International Conference on
Conference_Location :
Guangzhou, China
Print_ISBN :
0-7803-9091-1
Type :
conf
DOI :
10.1109/ICMLC.2005.1527776
Filename :
1527776
Link To Document :
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