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速崩片(FDT)预配方测试数据集的开发:数据汇总。

Dataset development of pre-formulation tests on fast disintegrating tablets (FDT): data aggregation.

机构信息

Department of Medical Informatics, Faculty of Medicine, Mashhad University of Medical Sciences, Mashhad, Iran.

Department of pharmaceutics, school of pharmacy, Mashhad University of Medical Sciences, Mashhad, Iran.

出版信息

BMC Res Notes. 2023 Jul 3;16(1):131. doi: 10.1186/s13104-023-06416-w.

Abstract

OBJECTIVES

Tablet manufacturing development is costly, laborious, and time-consuming. Technologies related to artificial intelligence like ,predictive model ,can be used in the control process to facilitate and accelerate the tablet manufacturing process. predictive models have become popular recently. However, predictive models need a comprehensive dataset of related data in the field, due to the lack of a dataset of tablet formulations, the aim of this study is to aggregate and integrate fast disintegration tablet's formulation into a comprehensive dataset.

DATA DESCRIPTION

The search strategy has been prepared between the years of 2010 to 2020, consisting of the keyword's 'formulation' ,'disintegrating' and 'Tablet', as well as their synonyms. By searching four databases, 1503 articles were retrieved, from these articles only 232 articles met all of the study's criteria. By reviewing 232 articles, 1982 formulations have been extracted, afterward pre-processing and cleaning data, contain steps of unifying the name and units, removing inappropriate formulations by an expert, and finally, data tidying was done on data. The developed dataset contains valuable information from various FDT's formulations, which can be used in pharmaceutical studies that are critical to the discovery and development of new drugs. this method can be applied to aggregate datasets from the other dosage forms.

摘要

目的

片剂制造的开发既昂贵又费力且耗时。人工智能相关技术,如“预测模型”,可用于控制过程中,以促进和加速片剂制造过程。预测模型最近变得很流行。然而,由于缺乏片剂配方的数据集,预测模型需要该领域的相关数据的综合数据集。因此,本研究旨在将速崩片的配方汇总并整合到一个综合数据集中。

数据描述

搜索策略已在 2010 年至 2020 年之间制定,包括关键词“配方”、“崩解”和“片剂”及其同义词。通过搜索四个数据库,共检索到 1503 篇文章,其中只有 232 篇文章符合所有研究标准。通过审查 232 篇文章,提取了 1982 种配方,然后进行预处理和清理数据,包含统一名称和单位、专家去除不适当配方的步骤,最后对数据进行整理。开发的数据集中包含来自各种 FDT 配方的有价值信息,可用于对发现和开发新药至关重要的药物研究。这种方法可应用于汇总其他剂型的数据集。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2860/10318697/0656dfd423b9/13104_2023_6416_Figb_HTML.jpg

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