المجلة العراقية لتكنولوجيا المعلومات 2019
DOI: 10.34279/0923-009-003-013
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Multilingual Text Summarization Based On LDA And Modified Pagerank

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Cited by 6 publications
(4 citation statements)
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“…Reference [40] They propose a multilingual text summarization approach that is based on LDA, linear discriminant analysis, and modified PageRank. They used the k-means clustering technique to choose the essential sentences based on similarity metrics from a document set written in seven languages: English, Arabic, Greek, French, Hindi, and Hebrew.…”
Section: Deep Learning-based Atsmentioning
confidence: 99%
See 1 more Smart Citation
“…Reference [40] They propose a multilingual text summarization approach that is based on LDA, linear discriminant analysis, and modified PageRank. They used the k-means clustering technique to choose the essential sentences based on similarity metrics from a document set written in seven languages: English, Arabic, Greek, French, Hindi, and Hebrew.…”
Section: Deep Learning-based Atsmentioning
confidence: 99%
“…RNN [37], LSTM[38], Encode-Decode[39],[40], Attention[39], Transformer, Bert[22],[41]. Moreover, at the start of the model in the year 2021, the researchers published a new language model named Pegasus, and they evaluated this model in this field of text summarization.…”
mentioning
confidence: 99%
“…In [13], Ali proposed the use of LDA and modified PageRank to summarize Arabic and English documents. LDA algorithm is used to classify sentences as important or unimportant based on seven extracted features.…”
Section: Statistical-based Approachesmentioning
confidence: 99%
“… All studies are evaluated their proposed approaches using the same metrics (precision, recall, and f-score).  One study [13] used the TAC dataset.  One study [10] used an artificial dataset consisting of 33 short documents collected from the Wikipedia.…”
Section: Statistical-based Approachesmentioning
confidence: 99%