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Bagging Approach for Medical Plants Recognition Based on Their DNA Sequences

机译:基于DNA序列的药用植物袋装方法

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摘要

Many drugs in modern medicines originate from plants and the first step in drug production, is the recognition of plants needed for this purpose. This article presents a bagging approach for medical plants recognition based on their DNA sequences. In this work, the authors have developed a system that recognize DNA sequences of 14 medical plants, first they divided the 14-class data set into bi class sub-data sets, then instead of using an algorithm to classify the 14-class data set, they used the same algorithm to classify the sub-data sets. By doing so, they have simplified the problem of classification of 14 plants into sub-problems of bi class classification. To construct the subsets, the authors extracted all possible pairs of the 14 classes, so they gave each class more chances to be well predicted. This approach allows the study of the similarity between DNA sequences of a plant with each other plants. In terms of results, the authors have obtained very good results in which the accuracy has been doubled (from 45% to almost 80%). Classification of a new sequence was completed according to majority vote.
机译:现代医学中的许多药物都来自植物,而药物生产的第一步就是认识到为此目的所需要的植物。本文提出了一种基于药用植物DNA序列的袋装方法。在这项工作中,作者开发了一种识别14种药用植物的DNA序列的系统,首先他们将14类数据集划分为bi类子数据集,然后代替使用算法对14类数据集进行分类,他们使用相同的算法对子数据集进行分类。通过这样做,他们简化了将14种植物分类为双分类的子问题的问题。为了构造子集,作者提取了14个类的所有可能对,因此他们给每个类提供了更好的预测机会。该方法允许研究植物的DNA序列与彼此之间的相似性。在结果方面,作者获得了非常好的结果,其准确性提高了一倍(从45%提高到几乎80%)。根据多数票,完成了对新序列的分类。

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