首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Neural network modeling to support an experimental study of the delignification process of sugarcane bagasse after alkaline hydrogen peroxide pre-treatment
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Neural network modeling to support an experimental study of the delignification process of sugarcane bagasse after alkaline hydrogen peroxide pre-treatment

机译:神经网络模型,支持碱性过氧化氢预处理后甘蔗泡沫甘蔗甘蔗渣的实验研究

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The present study examines the use of Artificial Neural Networks (ANN) as prediction and fault detection tools for the delignification process of sugarcane bagasse via hydrogen peroxide (H2O2). Experimental conditions varied from 25 to 45 degrees C for temperature and from 1.5% to 7.5% (v/v) for H2O2 concentrations. Analytical results for the delignification were obtained by Fourier Transform Infrared (FT-IR) analysis and used for the ANN training and testing steps, allowing for the development of ANN models. The condition experimentally identified as the most suitable for the delignification process was of 25 degrees C with 4.5% (v/v) H2O2, oxidizing 54% of total lignin. An ANN topology was selected for each proposed model, whose performance was evaluated by the correlation coefficient (R-2) and error indices (MSE and SSE). The values obtained for R-2 and the error indices indicated good agreements of the theoretical and actual data, of close to 1 and close to 0, respectively. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本研究探讨了人工神经网络(ANN)作为通过过氧化氢(H2O2)的甘蔗蛋白甘蔗蛋白甘蔗蛋白甘蔗酶的预测和故障检测工具。实验条件在25至45摄氏度的温度下变化,温度为1.5%至7.5%(v / v),用于H 2 O 2浓度。通过傅里叶变换红外(FT-IR)分析获得了脱匹配的分析结果,并用于ANN培训和测试步骤,允许开发ANN模型。实验鉴定的条件是最适合的脱磷酸化方法为25℃,含有4.5%(v / v)H 2 O 2,氧化54%的木质素。为每个提出的模型选择了一个ANN拓扑,其性能由相关系数(R-2)和误差指数(MSE和SSE)评估。为R-2获得的值和误差指数表示理论和实际数据的良好协议,分别接近1并接近0。 (c)2017 Elsevier Ltd.保留所有权利。

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