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Role of feed forward neural networks coupled with genetic algorithm in capitalizing of intracellular alpha-galactosidase production by Acinetobacter sp

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논문

Role of feed forward neural networks coupled with genetic algorithm in capitalizing of intracellular alpha-galactosidase production by Acinetobacter sp

학술지

BioMed research international

저자명

Edupuganti, Sirisha; Potumarthi, Ravichandra; Sathish, Thadikamala; Mangamoori, Lakshmi Narasu

초록

<P>Alpha-galactosidase production in submerged fermentation by <I>Acinetobacter</I> sp. was optimized using feed forward neural networks and genetic algorithm (FFNN-GA). Six different parameters, pH, temperature, agitation speed, carbon source (raffinose), nitrogen source (tryptone), and K<SUB>2</SUB>HPO<SUB>4</SUB>, were chosen and used to construct 6-10-1 topology of feed forward neural network to study interactions between fermentation parameters and enzyme yield. The predicted values were further optimized by genetic algorithm (GA). The predictability of neural networks was further analysed by using mean squared error (MSE), root mean squared error (RMSE), mean absolute error (MAE), mean absolute percentage error (MAPE), and <I>R</I><SUP>2</SUP>-value for training and testing data. Using hybrid neural networks and genetic algorithm, alpha-galactosidase production was improved from 7.5 U/mL to 10.2 U/mL.</P>

발행연도

2014

발행기관

Hindawi Publishing Corporation

ISSN

2314-6133

ISSN

2314-6141

2014

페이지

pp.361732

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1 2023-12-11

논문; 2014-12-31

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