建模Naïve Tembang Macapat分类的Bayes

A. Wibawa, Yana Ningtyas, Nimas Hadi Atmaja, I. Zaeni, Agung Bella Putra Utama, F. Dwiyanto, A. Nafalski
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引用次数: 1

摘要

tembang macapat可以根据其文化概念guru lagu, guru wilangan和guru gatra进行分类。人们可能会在根据既定规则识别某些歌曲时遇到困难。本研究旨在使用一个简单但功能强大的Naïve贝叶斯分类器来建立天bang的分类模型。朴素贝叶斯可以从稀疏数据中生成高精度的值。本研究通过检索每条线的最后一个元音来修改古鲁古的概念。同时,对guru wilangan的指导原则进行了修正,通过计算所有字符的数量(模型2)而不是计算音节的数量(模型1)。数据来源为serat wulangreh,有11种tembang macapat,即maskumambang, mijil, sinom, durma, asmaradana, kinanthi, pucung, gambuh, pangkur, dandhanggula和megatruh。使用k-fold交叉验证对88个数据的性能进行了评价。结果表明,本文提出的模型1优于模型2。这种有希望的方法打开了使用数据挖掘分类引擎作为文化教学和保存媒体的潜力。
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Modelling Naïve Bayes for Tembang Macapat Classification
The tembang macapat can be classified using its cultural concepts of guru lagu, guru wilangan, and guru gatra. People may face difficulties recognizing certain songs based on the established rules. This study aims to build classification models of tembang macapat using a simple yet powerful Naïve  Bayes classifier. The Naive Bayes can generate high-accuracy values from sparse data. This study modifies the concept of Guru Lagu by retrieving the last vowel of each line. At the same time, guru wilangan’s guidelines are amended by counting the number of all characters (Model 2) rather than calculating the number of syllables (Model 1). The data source is serat wulangreh with 11 types of tembang macapat, namely maskumambang, mijil, sinom, durma, asmaradana, kinanthi, pucung, gambuh, pangkur, dandhanggula, and megatruh. The k-fold cross-validation is used to evaluate the performance of 88 data. The result shows that the proposed Model 1 performs better than Model 2 in macapat classification. This promising method opens the potential of using a data mining classification engine as cultural teaching and preservation media.
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来源期刊
Harmonia: Journal of Arts Research and Education
Harmonia: Journal of Arts Research and Education Arts and Humanities-Visual Arts and Performing Arts
CiteScore
0.90
自引率
0.00%
发文量
32
审稿时长
4 weeks
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