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Quality by Design Approach: Application of Artificial Intelligence Techniques of Tablets Manufactured by Direct Compression

机译:通过设计方法实现质量:直接压片制造的人工智能技术的应用

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摘要

The publication of the International Conference of Harmonization (ICH) Q8, Q9, and Q10 guidelines paved the way for the standardization of quality after the Food and Drug Administration issued current Good Manufacturing Practices guidelines in 2003. “Quality by Design”, mentioned in the ICH Q8 guideline, offers a better scientific understanding of critical process and product qualities using knowledge obtained during the life cycle of a product. In this scope, the “knowledge space” is a summary of all process knowledge obtained during product development, and the “design space” is the area in which a product can be manufactured within acceptable limits. To create the spaces, artificial neural networks (ANNs) can be used to emphasize the multidimensional interactions of input variables and to closely bind these variables to a design space. This helps guide the experimental design process to include interactions among the input variables, along with modeling and optimization of pharmaceutical formulations. The objective of this study was to develop an integrated multivariate approach to obtain a quality product based on an understanding of the cause–effect relationships between formulation ingredients and product properties with ANNs and genetic programming on the ramipril tablets prepared by the direct compression method. In this study, the data are generated through the systematic application of the design of experiments (DoE) principles and optimization studies using artificial neural networks and neurofuzzy logic programs.
机译:在食品药品管理局于2003年发布了当前的《良好生产规范》指南之后,国际协调会议(ICH)Q8,Q9和Q10指南的发布为质量标准化铺平了道路。 ICH Q8指南使用产品生命周期中获得的知识,对关键过程和产品质量提供了更好的科学理解。在此范围内,“知识空间”是在产品开发过程中获得的所有过程知识的总结,而“设计空间”是可以在可接受的范围内制造产品的区域。为了创建空间,可以使用人工神经网络(ANN)来强调输入变量的多维交互并将这些变量紧密地绑定到设计空间。这有助于指导实验设计过程包括输入变量之间的相互作用,以及药物制剂的建模和优化。这项研究的目的是开发一种多变量综合方法,以了解配方成分与产品特性之间的因果关系,人工神经网络和通过直接压片法制备的雷米普利片剂的遗传程序,从而获得优质产品。在这项研究中,数据是通过实验设计(DoE)原理的系统应用和使用人工神经网络和Neurofuzzy逻辑程序进行的优化研究而生成的。

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