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Image of PERINGKASAN TEKS BAHASA INDONESIA PADA CERPEN MENGGUNAKAN METODE LATENT SEMANTIC ANALYSIS (LSA)

Text

PERINGKASAN TEKS BAHASA INDONESIA PADA CERPEN MENGGUNAKAN METODE LATENT SEMANTIC ANALYSIS (LSA)

Kasim, Nabilah Thahirah - Personal Name;

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Penilaian anda saat ini :  

Cerpen or short stories are entertaining readings for readers of all ages. In the presentation, often the category of naming the title and presenting does not represent the content of the written story, so it will cause problems when finding the desired poem. Finally, to find out from a reader's knowledge it is necessary to understand the whole of the short story which of course takes a very long time. Another alternative to get information and understand a value-based quickly is to read the summary or synopsis of the short story. Automated text summarization is research in the field of assisting natural language to enable readers to summarize a book more efficiently to get to the heart of the story. In this study, text summarization was carried out using the Latent Semantic Analysis (LSA) algorithm. The test was carried out using test data of 30 short stories texts and the level of compression of the summary sentences was as much as 30% of the number of short stories text sentences. In this study, there are three stages, first text preprocessing, next calculating the weight of TF-IDF, and the last determining the sentence that will be a summary by calculating Latent Semantic Analysis (LSA). The level of text summary results is measured by the calculation of recall, precision, and f-measure. This study resulted in the value of the text in the short story having an average precision of 74.93%, recall of 68.4%, and f-measure of 71.43%. Based on the accuracy it can be said that it gives summary results that resemble the results of a manual summary quite well in describing the contents of the entire short story.


Availability
Inventory Code Barcode Call Number Location Status
2207003491T77791T777912022Central Library (Referens)Available but not for loan - Not for Loan
Detail Information
Series Title
-
Call Number
T777912022
Publisher
Inderalaya : Jurusan Teknik Informatika, Fakultas Ilmu Komputer Universitas Sriwijaya., 2022
Collation
xvii, 112 hlm.; ilus.; 29 cm
Language
Indonesia
ISBN/ISSN
-
Classification
003.507
Content Type
-
Media Type
-
Carrier Type
-
Edition
-
Subject(s)
Jurusan Teknik Informatika
Teori Informasi
Specific Detail Info
-
Statement of Responsibility
SEPTA
Other version/related

No other version available

File Attachment
  • PERINGKASAN TEKS BAHASA INDONESIA PADA CERPEN MENGGUNAKAN METODE LATENT SEMANTIC ANALYSIS (LSA)
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