Time-dependent fermentation control strategies for enhancing synthesis of marine bacteriocin 1701 using artificial neural network and genetic algorithm.
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[1] E. B. Gueguim Kana,et al. Modeling and optimization of biogas production on saw dust and other co-substrates using Artificial Neural network and Genetic Algorithm. , 2012 .
[2] T. Sathish,et al. Modelling and optimization of fermentation factors for enhancement of alkaline protease production by isolated Bacillus circulans using feed‐forward neural network and genetic algorithm , 2008, Journal of applied microbiology.
[3] B. Saha,et al. Hydrothermal pretreatment of sugarcane bagasse using response surface methodology improves digestibility and ethanol production by SSF , 2012, Journal of Industrial Microbiology & Biotechnology.
[4] Avishek Majumder,et al. Artificial intelligence based optimization of exocellular glucansucrase production from Leuconostoc dextranicum NRRL B-1146. , 2008, Bioresource technology.
[5] M. Shilo. Lysis of Blue-Green Algae by Myxobacter , 1970, Journal of bacteriology.
[6] Martin N. Rossor,et al. Creation of an Open-Access, Mutation-Defined Fibroblast Resource for Neurological Disease Research , 2012, PloS one.
[7] A. Ariff,et al. Comparison of the estimation capabilities of response surface methodology and artificial neural network for the optimization of recombinant lipase production by E. coli BL21 , 2012, Journal of Industrial Microbiology & Biotechnology.
[8] Yaqi Cai,et al. Investigation of antibiotics in mollusks from coastal waters in the Bohai Sea of China. , 2012, Environmental pollution.
[9] A. Boxall,et al. A global perspective on the use, sales, exposure pathways, occurrence, fate and effects of veterinary antibiotics (VAs) in the environment. , 2006, Chemosphere.
[10] K. Muthukumar,et al. Antibiotic resistant pathogens versus human impacts: a study from three eco-regions of the Chennai coast, southern India. , 2012, Marine pollution bulletin.
[11] Ezequiel Franco-Lara,et al. Evaluation of artificial neural networks for modelling and optimization of medium composition with a genetic algorithm , 2006 .
[12] M. Zafar,et al. Artificial intelligence based modeling and optimization of poly(3-hydroxybutyrate-co-3-hydroxyvalerate) production process by using Azohydromonas lata MTCC 2311 from cane molasses supplemented with volatile fatty acids: a genetic algorithm paradigm. , 2012, Bioresource technology.
[13] Mario Bunge,et al. A General Black Box Theory , 1963, Philosophy of Science.
[14] Surendra Kumar,et al. Modeling and optimization of poly(3hydroxybutyrate-co-3hydroxyvalerate) production from cane molasses by Azohydromonas lata MTCC 2311 in a stirred-tank reactor: effect of agitation and aeration regimes , 2012, Journal of Industrial Microbiology & Biotechnology.
[15] M. A. Maldonado,et al. Salmon Aquaculture and Antimicrobial Resistance in the Marine Environment , 2012, PloS one.
[16] W. Verstraete,et al. Alternatives to antibiotics to control bacterial infections: luminescent vibriosis in aquaculture as an example. , 2007, Trends in biotechnology.
[17] Gan Zhang,et al. Occurrence and distribution of antibiotics in the Beibu Gulf, China: impacts of river discharge and aquaculture activities. , 2012, Marine environmental research.
[18] R. Prakasham,et al. Enrichment of glutaminase production by Bacillus subtilis RSP‐GLU in submerged cultivation based on neural network—genetic algorithm approach , 2010 .
[19] F. Cabello,et al. Heavy use of prophylactic antibiotics in aquaculture: a growing problem for human and animal health and for the environment. , 2006, Environmental microbiology.
[20] H Guterman,et al. Optimization of feeding profile for a fed-batch bioreactor by an evolutionary algorithm. , 2002, Journal of biotechnology.
[21] A Lübbert,et al. Bioreactor performance: a more scientific approach for practice. , 2001, Journal of biotechnology.
[22] Md. Shahidul Islam,et al. Impacts of pollution on coastal and marine ecosystems including coastal and marine fisheries and approach for management: a review and synthesis. , 2004, Marine pollution bulletin.
[23] P R Patnaik,et al. Applications of neural networks to recovery of biological products. , 1999, Biotechnology advances.
[24] Caroline Williams. Combatting marine pollution from land-based activities: Australian initiatives , 1996 .
[25] B. S. Davidson. New dimensions in natural products research: cultured marine microorganisms , 1995 .
[26] David E. Goldberg,et al. Genetic algorithms and Machine Learning , 1988, Machine Learning.
[27] Rekha S. Singhal,et al. Comparison of artificial neural network (ANN) and response surface methodology (RSM) in fermentation media optimization: Case study of fermentative production of scleroglucan , 2008 .
[28] Virendra S. Bisaria,et al. Genetic algorithm-based medium optimization for enhanced production of fluorescent pseudomonad R81 and siderophore , 2009 .
[29] Geoffrey E. Hinton,et al. Learning representations by back-propagating errors , 1986, Nature.
[30] Ramkrishna Sen,et al. Artificial neural network modeling and genetic algorithm based medium optimization for the improved production of marine biosurfactant. , 2010, Bioresource technology.
[31] J. Queiroz,et al. Optimization of fermentation conditions for the production of human soluble catechol-O-methyltransferase by Escherichia coli using artificial neural network. , 2012, Journal of biotechnology.
[32] G. M. Luna,et al. Antibiotic-resistant enterococci in seawater and sediments from a coastal fish farm. , 2012, Microbial drug resistance.
[33] Yeoung-Sang Yun,et al. Preparation of PEI-coated bacterial biosorbent in water solution: optimization of manufacturing conditions using response surface methodology. , 2011, Bioresource technology.
[34] J. Giesy,et al. The occurrence of selected antibiotics in Hong Kong coastal waters. , 2007, Marine pollution bulletin.
[35] Sing Kiong Nguang,et al. Modelling and optimization of fed-batch fermentation processes using dynamic neural networks and genetic algorithms , 2004 .