Tala算法与Nazief Adriani在摘要文献和国家新闻中的词干提取测试结果比较

Natalinda Pamungkas, E. Udayanti, B. Indriyono, Wildan Mahmud, Ery Mintorini, Arika Norma Wahyu Dorroty, Sanina Quamila Putri
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引用次数: 0

摘要

不可否认,很多人都需要信息的存在。这一声明说明信息的重要性日益增加,获取有关文件和文献的需求也相应增加。然后对从这些文档中获得的信息内容进行排序,使其含义更易于理解。这种排序过程称为词干提取。词干提取是一个广泛应用于基本单词搜索的过程。把无意义的词分开可以使信息更清晰。有必要注意根据所使用的语言选择合适的词干提取算法。许多词干提取算法可用于执行这个基本的单词搜索过程。其中一些是Tala和Nazief Adriani算法。这两种算法在工作过程中存在差异。Tala算法采用基于规则的Porter算法,Nazief & Adriani算法基于字典。两种算法在精度和速度上各有优势。因此,在本研究中,将通过比较两种算法在印尼语文本词干提取过程中的性能进行分析。试验过程使用几个不同的数据源来衡量每种算法的速度和准确性。本研究使用的数据来源包括30名学生的论文报告或期末作业的摘要,以及多达200个网络新闻的信息。从已经进行的测试结果可以得出结论,Tala词干提取算法的准确率水平低于Nazief Adriani。Tala算法的平均准确率只有65.29%,而Nazief Adriani的准确率为78.47%。在速度方面,Tala算法的速度优于Nazief Adriani的32.19秒和Nazief & Adriani的65.2秒。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison of Stemming Test Results of Tala Algorithms with Nazief Adriani in Abstract Documents and National News
The existence of information is undeniably needed by many people. This statement describes the increasing importance of information and the corresponding increase in the need for access to relevant documents and literature. The contents of the information derived from these documents are then sorted to make their meaning more understandable. This sorting process is known as stemming. Stemming is a process that is widely applied in basic word searches. Separating meaningless words can make information clearer. It is necessary to pay attention to the appropriate stemming algorithm according to the language used. Many stemming algorithms can be used to perform this basic word search process. Some of them are the Tala and Nazief Adriani algorithms. The two algorithms have differences in their work processes. The Tala algorithm adopts a rule-based Porter algorithm, while the Nazief & Adriani algorithm works based on a dictionary. The two algorithms have their respective advantages in terms of accuracy and speed. Therefore, in this study, an analysis will be carried out by comparing the performance of the two algorithms in the Indonesian language text-stemming process. The trial process uses several different data sources to measure the speed and accuracy of each algorithm. Data sources used in this study included abstracts of student thesis reports or final assignments of 30 students and information from online news as many as 200. From the results of the tests that have been carried out, it can be concluded that the Tala stemming algorithm has a lower accuracy level than Nazief Adriani. The Tala algorithm only has an average accuracy of 65.29%, while Nazief Adriani has an accuracy of 78.47%. Regarding speed, the Tala algorithm has a better speed than Nazief Adriani at 32.19 seconds and Nazief & Adriani at 65.2 seconds.  
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