测试类别的Naive Bayes平滑工作者分析

Indah Listiowarni, Eka Rahayu Setyaningsih
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引用次数: 4

摘要

认知领域分类法bloom是一种基于教育界难度等级对考试进行分类的参考,这些分类的结果将用于编写各种考试问题。在本研究中,将使用朴素贝叶斯分类器对高中生物考试文本进行分类。卡方是一种特征选择方法,用于在检查时去除未使用的特征,提高过程文本分类的速度。此外,朴素贝叶斯分类器是一种导致分类文本误分类结果的方法,如果在训练数据中没有找到测试数据,就会发生这种情况,所以我们需要另一种方法来最小化它,这种方法称为平滑法。在本研究中,我们将测试平滑方法作为朴素贝叶斯分类器和卡方作为特征选择方法的性能和影响。本研究比较的平滑方法有:拉普拉斯、狄利克雷和两阶段平滑。DOI: https://doi.org/10.26905/jtmi.v4i2.2080
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analisis Kinerja Smoothing pada Naive Bayes untuk Pengkategorian Soal Ujian
Cognitive domain taxonomy bloom is a reference to classify examination based on difficulty levels on education world, the result of  those categories will be used to compile a variety of exam questions. In this research, Naive bayes classifier will be used to categorize the text about biology exam for high school. Chi-square is feature selection method that will be used to remove an unuse features on examination, and increase speed of process text categorization. In addition, naive bayes classifier is a method that causing missclassification result of categorization text, this case will be happen if testing data  is not found in training data, so we need another method to minimize it, that method called by smoothing method. In this research we will test perfomance and impact of smothing method for naive bayes classifier and chi-square as feature selection method. The smoothing methods  to be compared on this research are : Laplace, Dirichlet and Two Stage smoothing. DOI: https://doi.org/10.26905/jtmi.v4i2.2080
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