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arxiv: 1606.03143 · v1 · pith:JY7MYCVNnew · submitted 2016-06-09 · 💻 cs.CL

PerSum: Novel Systems for Document Summarization in Persian

classification 💻 cs.CL
keywords documentpersiansummarizationsystemsapproachbettercentralityevaluation
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In this paper we explore the problem of document summarization in Persian language from two distinct angles. In our first approach, we modify a popular and widely cited Persian document summarization framework to see how it works on a realistic corpus of news articles. Human evaluation on generated summaries shows that graph-based methods perform better than the modified systems. We carry this intuition forward in our second approach, and probe deeper into the nature of graph-based systems by designing several summarizers based on centrality measures. Ad hoc evaluation using ROUGE score on these summarizers suggests that there is a small class of centrality measures that perform better than three strong unsupervised baselines.

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