Scientific document summarization in multi-objective clustering framework

被引:0
|
作者
Santosh Kumar Mishra
Naveen Saini
Sriparna Saha
Pushpak Bhattacharyya
机构
[1] Indian Institute of Technology Patna,Department of Computer Science and Engineering
[2] Woosong University,Technology Studies, Endicott College of International Studies
[3] Indian Institute of Technology Bombay,Department of Computer Science and Engineering
来源
Applied Intelligence | 2022年 / 52卷
关键词
Text summarization; Word mover’s distance; Multi-objective optimization; Clustering;
D O I
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中图分类号
学科分类号
摘要
The exponential growth in the number of scientific articles has made it difficult for the researchers to keep themselves updated with the new developments. Scientific document summarization solves this problem by providing a summary of essential contributions. In this paper, we have presented a novel method of scientific document summarization using a multi-objective differential evolution technique. Here, firstly distinct important sentences are extracted by using citation contextualization. These sentences are further clustered using the concept of multi-objective clustering. Two objective functions, PBM index, and XB index, measuring the compactness and separation of sentence clusters, are simultaneously optimized utilizing the search capability of multi-objective differential evolution. We have conducted our experiments on CL-SciSumm 2016, CL-SciSumm 2017, CL-SciSumm 2018, and CL-SciSumm 2019 datasets. Obtained results of CL-SciSumm 2016 and CL-SciSumm 2017 are compared with the state-of-the-art methods. Evaluation results demonstrate that our method outperforms others in terms of ROUGE-2, ROUGE-3, and ROUGE-SU4 scores.
引用
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页码:1520 / 1543
页数:23
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