A feed-forward artificial neural network for prediction of the aquatic ecotoxicity of alcohol ethoxylate.
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Bin-Le Lin | Yaobin Meng | B. Lin | Y. Meng
[1] P. Dorn,et al. Assessing the effects of a C14-15 linear alcohol ethoxylate surfactant in stream mesocosms. , 1996, Ecotoxicology and environmental safety.
[2] Lutz Prechelt,et al. Automatic early stopping using cross validation: quantifying the criteria , 1998, Neural Networks.
[3] B. Peterson,et al. Utility of stable isotopes ((13)C and (15)N) to demonstrate comparability between natural and experimental streams for environmental risk assessment. , 2006, Ecotoxicology and environmental safety.
[4] A. Maki,et al. Acute toxicity studies of surfactants toDaphnia magna andDaphnia pulex , 1979, Archives of environmental contamination and toxicology.
[5] W. B. Gillespie,et al. Effects of a nonionic surfactant (C14–15AE‐7) on aquatic invertebrates in outdoor stream mesocosms , 1996 .
[6] D. Howes,et al. Effect of water hardness on the toxicity of a nonionic detergent to fish , 1975 .
[7] S. Wold,et al. Multivariate quantitative structure-activity relationships for the aquatic toxicity of technical nonionic surfactants , 2000 .
[8] K. Macek,et al. Susceptibility of bluegill sunfish (Lepomis macrochirus) to nonionic surfactants , 1975, Bulletin of environmental contamination and toxicology.
[9] P. Dorn,et al. Acute toxicity and structure‐activity relationships of nine alcohol ethoxylate surfactants to fathead minnow and Daphnia magna , 1997 .
[10] D. Wildish. Lethal response by atlantic salmon parr to some polyoxyethylated cationic and nonionic surfactants , 1974 .
[11] Kurt Hornik,et al. Multilayer feedforward networks are universal approximators , 1989, Neural Networks.
[12] A stream mesocosm study on the ecological effects of a C12-15 linear alcohol ethoxylate surfactant. , 2004, Ecotoxicology and environmental safety.
[13] S. Belanger,et al. Acute and chronic aquatic toxicity structure-activity relationships for alcohol ethoxylates. , 2003, Ecotoxicology and environmental safety.
[14] L. Ometto,et al. Teratogenic and toxic effects of alcohol ethoxylate and alcohol ethoxy sulfate surfactants on Xenopus laevis embryos and tadpoles. , 2001, Ecotoxicology and environmental safety.
[15] R. Singh,et al. Toxicity of Ionic and Nonionic Surfactants to Six Macrobes Found in Agra, India , 2002, Bulletin of environmental contamination and toxicology.
[16] Martin T. Hagan,et al. Neural network design , 1995 .
[17] W. Bishop,et al. Development and Evaluation of a Flow-Through Growth Inhibition Test with Duckweed ( Lemna minor ) , 1981 .
[18] Kurt Hornik,et al. Approximation capabilities of multilayer feedforward networks , 1991, Neural Networks.
[19] P. Dorn,et al. Effects of a nonionic surfactant (c14–15 AE-7) on fish survival, growth and reproduction in the laboratory and in outdoor stream mesocosms , 1996 .
[20] B. Gejlsbjerg,et al. Comparison of biodegradation of surfactants in soils and sludge-soil mixtures by use of 14C-labelled compounds and automated respirometry. , 2003, Chemosphere.
[21] M. Lewis,et al. The effects of mixtures and other environmental modifying factors on the toxicities of surfactants to freshwater and marine life , 1992 .
[22] T W Schultz,et al. Relationships of quantitative structure-activity for normal aliphatic alcohols. , 1990, Ecotoxicology and environmental safety.
[23] David J. Hansen,et al. Technical basis for narcotic chemicals and polycyclic aromatic hydrocarbon criteria. I. Water and tissue , 2000 .
[24] H. Bode,et al. Biological effects of surfactants, III hydra as a highly sensitive assay animal , 1978 .
[25] M. Lewis,et al. Environmental modification of the photosynthetic response of lake plankton to surfactants and significance to a laboratory-field comparison , 1986 .
[26] M. Lewis,et al. Acute Toxicities of Equimolar and Equitoxic Surfactant Mixtures to Daphnia magna and Lepomis macrochirus , 1981 .
[27] Daehyon Kim,et al. Normalization methods for input and output vectors in backpropagation neural networks , 1999, Int. J. Comput. Math..
[28] A. Maki. Correlations Between Daphnia magna and Fathead Minnow (Pimephales promelas) Chronic Toxicity Values for Several Classes of Test Substances , 1979 .
[29] M. Lewis,et al. Comparative acute toxicities of surfactants to aquatic invertebrates. , 1983, Ecotoxicology and environmental safety.
[30] R. Lizotte,et al. The effects of a C12–13 linear alcohol ethoxylate surfactant on periphyton, macrophytes, invertebrates and fish in stream mesocosms , 1997 .
[31] J. Salanitro,et al. Assessing the aquatic hazard of some branched and linear nonionic surfactants by biodegradation and toxicity , 1993 .
[32] I. Ribosa,et al. Effect of homolog distribution on the toxicity of alcohol ethoxylates , 1996 .
[33] Masanori Seki,et al. Life‐cycle toxicity of 4‐nonylphenol to medaka (Oryzias latipes) , 2001, Environmental toxicology and chemistry.
[34] R. Lizotte,et al. An assessment of the ecological effects of a C9--11 linear alcohol ethoxylate surfactant in stream mesocosm experiments , 1997 .
[35] R. Sudo,et al. The growth inhibition of planktonic algae due to surfactants used in washing agents , 1984 .
[36] T. Madsen,et al. Biodegradability and aquatic toxicity of glycoside surfactants and a nonionic alcohol ethoxylate , 1996 .
[37] M. Lewis. Chronic and sublethal toxicities of surfactants to aquatic animals: A review and risk assessment , 1991 .
[38] H. Nyberg. Growth of selenastrum capricornutum in the presence of synthetic surfactants , 1988 .
[39] D. T. Stanton,et al. Effects of surfactants on the rotifer, Brachionus calyciflorus, in a chronic toxicity test and in the development of qsars , 1997 .
[40] H. Painter,et al. The biodegradability of two primary alcohol ethoxylate nonionic surfactants under practical conditions, and the toxicity of the biodegradation products to rainbow trout , 1985 .
[41] P. Dorn,et al. Chronic toxicity of a homologous series of linear alcohol ethoxylate surfactants to Daphnia magna in 21 day flow‐through laboratory exposures , 1999 .
[42] W. Eckhoff,et al. Monitoring of environmental fingerprints of alcohol ethoxylates in Europe and Canada. , 2006, Ecotoxicology and environmental safety.
[43] Tao Xiong,et al. A combined SVM and LDA approach for classification , 2005, Proceedings. 2005 IEEE International Joint Conference on Neural Networks, 2005..
[44] D. Robaugh,et al. Derivatization LC/MS for the simultaneous determination of fatty alcohol and alcohol ethoxylate surfactants in water and wastewater samples. , 2001, Environmental science & technology.
[45] H. Kamaya,et al. Anesthesia cutoff phenomenon: interfacial hydrogen bonding. , 1990, Science.
[46] P. Dorn,et al. Responses of aquatic invertebrates to a C9–11 non-ionic surfactant in outdoor stream mesocosms , 1997 .
[47] B. Isomaa,et al. The acute toxicity of surfactants on fish cells, Daphnia magna and fish-a comparative study. , 2000, Toxicology in vitro : an international journal published in association with BIBRA.
[48] J. Steber,et al. The anaerobic degradation of detergent range fatty alcohol ethoxylates. Studies with 14C-labelled model surfactants , 1987 .
[49] J. Patoczka,et al. Acute toxicity of industrial surfactants toMysidopsis bahia , 1989, Archives of environmental contamination and toxicology.
[50] C. Gloxhuber,et al. Untersuchungen über die wirkungen von alkylpolyglykoläthern in hohen konzentrationen auf fische , 1968 .
[51] M. Kikuchi,et al. Lethal response of some surfactants to medaka Oryzias latipes with relation to chemical structure. , 1984 .
[52] T Wind,et al. Ecotoxicity quantitative structure-activity relationships for alcohol ethoxylate mixtures based on substance-specific toxicity predictions. , 2006, Ecotoxicology and environmental safety.
[53] F. F. Weight,et al. Lipid vs protein theories of alcohol action in the nervous system. , 1996, Annual review of pharmacology and toxicology.
[54] H. Könemann. Quantitative structure-activity relationships in fish toxicity studies. Part 1: relationship for 50 industrial pollutants. , 1981, Toxicology.
[55] D. Roberts. QSAR issues in aquatic toxicity of surfactants. , 1991, The Science of the total environment.
[56] T Wind,et al. Aquatic risk assessment of alcohol ethoxylates in North America and Europe. , 2006, Ecotoxicology and environmental safety.
[57] J. Steber,et al. Metabolites and biodegradation pathways of fatty alcohol ethoxylates in microbial biocenoses of sewage treatment plants , 1985, Applied and environmental microbiology.
[58] J. S. Alabaster,et al. The acute toxicity of eleven detergents to fish: Results of an interlaboratory exercise , 1979 .
[59] M. Servos. REVIEW OF THE AQUATIC TOXICITY, ESTROGENIC RESPONSES AND BIOACCUMULATION OF ALKYLPHENOLS AND ALKYLPHENOL POLYETHOXYLATES , 1999 .
[60] Davidson,et al. Responses of aquatic communities to 25-6 alcohol ethoxylate in model stream ecosystems. , 2000, Aquatic toxicology.
[61] K. Miller,et al. Can the lipid theories of anesthesia account for the cutoff in anesthetic potency in homologous series of alcohols? , 1981, Molecular pharmacology.
[62] D. H. Davidson,et al. Validation of a four‐day Ceriodaphnia toxicity test and statistical considerations in data analysis , 1991 .
[63] M. Warne,et al. Toxicity of laundry detergent components to a freshwater cladoceran and their contribution to detergent toxicity. , 1999, Ecotoxicology and environmental safety.
[64] Molecular structure and aquatic toxicity — An example with C1 - C13 aliphatic alcohols , 1984 .
[65] R. Peoples,et al. Inhibition of N-methyl-D-aspartate receptors by straight-chain diols: implications for the mechanism of the alcohol cutoff effect. , 2002, Molecular pharmacology.
[66] J. Salanitro,et al. Activated Sludge Treatment of Ethoxylate Surfactants at High Industrial Use Concentrations , 1988 .
[67] Price Ks,et al. Brine shrimp bioassay and seawater BOD of petrochemicals. , 1974 .
[68] F. F. Weight,et al. Cutoff in potency implicates alcohol inhibition of N-methyl-D-aspartate receptors in alcohol intoxication. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[69] Bernard Widrow,et al. Improving the learning speed of 2-layer neural networks by choosing initial values of the adaptive weights , 1990, 1990 IJCNN International Joint Conference on Neural Networks.
[70] T. Wayne Schultz,et al. Population growth impairment of aliphatic alcohols to Tetrahymena , 2004, Environmental toxicology.
[71] J. Shao. Linear Model Selection by Cross-validation , 1993 .