Prediction on intent classification of Java and C# web queries using semi-supervision
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Date
Publisher
Institute of Electrical and Electronics Engineers Inc.
Citation
M. A. Haque, I. J. Dristy, M. T. I. Tuhin, A. H. Sagar and J. M. Barek, "Prediction on Intent Classification of Java and C# Web queries using Semi-supervision," 2021 24th International Conference on Computer and Information Technology (ICCIT), Dhaka, Bangladesh, 2021, pp. 1-5, doi: 10.1109/ICCIT54785.2021.9689884.
Abstract
Proper intent classification of web queries is significant in providing users with accurate search results. For STEM-related searches, the generalized search engine provides some discrete results, and it becomes challenging to find the desired ones. Here, in our work, we have used a semi-supervised process and compared it with supervising approaches. This process has been done on Java and C# Bing web queries. From the performance comparison, we have found that our semi-supervised model has performed better than others according to accuracy and f1-score. We have also analyzed the performance by changing training data size, doing error analysis on all models, and finished by presenting how this prediction can be used on a search data fetching process.
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Conference Proceeding