Improved exponential cuckoo search method for sentiment analysis

被引:0
|
作者
Avinash Chandra Pandey
Ankur Kulhari
Himanshu Mittal
Ashish Kumar Tripathi
Raju Pal
机构
[1] PDPM Indian Institute of Information Technology,Discipline of Computer Science & Engineering
[2] Design and Manufacturing,Department of Computer Science & Engineering
[3] Government Polytechnic College,Department of Computer Science
[4] Indira Gandhi Delhi Technical University for Women,Department of Computer Science and Information Technology
[5] Malaviya National Institute of Technology,undefined
[6] Jaypee Institute of Information Technology,undefined
来源
关键词
Sentimental data; Data processing; Feature extraction; Improved exponential cuckoo search; Clustering;
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摘要
Sentiment analysis is a type of contextual text mining that determines how people feel about emotional issues that are frequently discussed on social media. The sentiments of emotive data are analyzed using a variety of sentiment analysis approaches, including lexicon-based, machine learning-based, and hybrid methods. Unsupervised approaches, particularly clustering methods are preferred over other methods since they can be applied directly to unlabeled datasets. Therefore, a clustering method based on an improved exponential cuckoo search has been proposed in this study for sentiment analysis. The proposed clustering method finds the optimal cluster centers from emotive datasets, which are then utilized to determine the sentiment polarity of emotive contents. The proposed improved exponential cuckoo search is first tested on standard and CEC-2013 benchmark functions before being utilized to determine the best cluster centroids from sentimental datasets. To assess the efficiency of the proposed method, it has been compared with K-means, cuckoo search, grey wolf optimizer, grey wolf optimizer with simulated annealing, hybrid step size-based cuckoo search, and spiral cuckoo search on nine sentimental datasets. The Experimental results and statistical analysis have proven the efficacy of the proposed method.
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页码:23979 / 24029
页数:50
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