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Application of physicochemical properties and process parameters in the development of a neural network model for prediction of tablet characteristics

机译:理化性质和工艺参数在预测片剂特性的神经网络模型开发中的应用

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摘要

The importance of in silico modeling in the pharmaceutical industry is continuously increasing. The aim of the present study was the development of aneural network model for prediction of the postcompressional properties of scored tablets based on the application of existing data sets from our previous studies. Some important process parameters and physicochemical characteristics of the powder mixtures were used as training factors to achieve the best applicability in a wide range of possible compositions. The results demonstrated that, after some pre-processing of the factors, an appropriate prediction performance could be achieved. However, because of the poor extrapolation capacity, broadening of the training data range appears necessary.
机译:计算机模拟在制药行业中的重要性正在不断提高。本研究的目的是基于我们以前研究的现有数据集的应用,开发用于预测刻痕片剂后压缩特性的神经网络模型。粉末混合物的一些重要工艺参数和理化特性被用作训练因素,以在各种可能的成分中实现最佳的适用性。结果表明,在对这些因素进行一些预处理之后,可以实现适当的预测性能。但是,由于外推能力差,因此有必要扩大训练数据范围。

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