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Neural network classification of pharmaceutical active ingredient from near infrared spectra

机译:基于近红外光谱的药物活性成分神经网络分类

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This paper presents results from a scoping study undertaken with the intention of demonstrating the applicability of reflectance Near-Infrared (NIR) spectroscopy in classification of pharmaceutical type based on active ingredient. The part of the process selected for the scoping study is the packaging step in the manufacturing of pharmaceuticals. The rational for the selection of the packaging step is in older processing lines the product is classified after tablet coating and before blister packaging using visual automatic inspection techniques however for 100% conformance a more discriminating technique is required. In this study, NIR spectra (with wavelengths between 400nm and 1100nm) were obtained for samples pertaining to 3 different types of pharmaceuticals Quetiapine, Ibuprofen and Paracetamol. The dimensionality of the data set was reduced using Principal Components and the data was feed into a back propagation neural network configured to classify the data based on active ingredient type. The recognition rates achieved in this study were high enough to suggest that NIR spectroscopy is a viable method of ensuring 100% identification of pharmaceutical type prior to packaging for the pharmaceuticals tested.
机译:本文介绍了一项范围界定研究的结果,旨在证明反射率近红外(NIR)光谱在基于活性成分的药物类型分类中的适用性。为范围研究选择的过程的一部分是药品制造中的包装步骤。选择包装步骤的合理原因是,在较旧的生产线中,产品在片剂包衣后和泡罩包装之前使用视觉自动检查技术进行分类,但是对于100%的一致性,则需要一种更具区别性的技术。在这项研究中,获得了与3种不同类型的药物Quetiapine,Ibuprofen和Paracetamol有关的样品的NIR光谱(波长在400nm至1100nm之间)。使用主成分降低了数据集的维数,并将数据输入到反向传播神经网络中,该神经网络配置为根据有效成分类型对数据进行分类。在这项研究中获得的识别率足够高,表明NIR光谱法是一种可行的方法,可确保在包装所测试药物之前100%识别药物类型。

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