DocumentCode :
1850703
Title :
Multiple Input-Single Output (MISO) Feedforward Artificial Neural Network (FANN) Models for Pilot Plant Binary Distillation Column
Author :
Abdullah, Zailani ; Ahmad, Z. ; Aziz, N.
Author_Institution :
Fac. of Chem. Eng., Univ. Teknol. MARA, Shah Alam, Malaysia
fYear :
2011
fDate :
27-29 Sept. 2011
Firstpage :
157
Lastpage :
160
Abstract :
Distillations column control becomes the main subject of control research due to the intensive energy usage in the industry and the nonlinearity behavior in control variables. The growing importance of "green technology" and sustainability has triggered researchers to focus on this matter. Therefore, a method of modeling and controlling of the column is certainly indispensible in this matter. Neural networks are a powerful tool especially in modeling nonlinear and intricate process. Hence, in this paper Feed forward Artificial Neural network (FANN) have been chosen to model the multiple input-single output (MISO) for the distillation column predicting top and bottom composition. The performance and the accuracy of the models have been presented in term of correlation coefficient (R value) and the smallest sum squared error (SSE). It has been found that FANN can model MISO in representing the process. The results obtained also show that the MISO model is suitable to be used to represent the distillation process accurately.
Keywords :
distillation; feedforward neural nets; FANN; MISO; correlation coefficient; distillations column control; green technology; multiple input-single output feedforward artificial neural network model; nonlinearity behavior; pilot plant binary distillation column; sum squared error; Biological neural networks; Biological system modeling; Correlation; Data models; Distillation equipment; Neurons; Testing; Distillation column; Feedforward Artificial Neural network (FANN); Multiple Input-single output (MISO);
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bio-Inspired Computing: Theories and Applications (BIC-TA), 2011 Sixth International Conference on
Conference_Location :
Penang
Print_ISBN :
978-1-4577-1092-6
Type :
conf
DOI :
10.1109/BIC-TA.2011.21
Filename :
6046890
Link To Document :
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