Hybrid Quantum-Classical Machine Learning for Sentiment Analysis
October 08, 2023 ยท Declared Dead ยท ๐ International Conference on Machine Learning and Applications
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Authors
Abu Kaisar Mohammad Masum, Anshul Maurya, Dhruthi Sridhar Murthy, Pratibha, Naveed Mahmud
arXiv ID
2310.10672
Category
cs.CL: Computation & Language
Cross-listed
cs.LG
Citations
7
Venue
International Conference on Machine Learning and Applications
Last Checked
4 months ago
Abstract
The collaboration between quantum computing and classical machine learning offers potential advantages in natural language processing, particularly in the sentiment analysis of human emotions and opinions expressed in large-scale datasets. In this work, we propose a methodology for sentiment analysis using hybrid quantum-classical machine learning algorithms. We investigate quantum kernel approaches and variational quantum circuit-based classifiers and integrate them with classical dimension reduction techniques such as PCA and Haar wavelet transform. The proposed methodology is evaluated using two distinct datasets, based on English and Bengali languages. Experimental results show that after dimensionality reduction of the data, performance of the quantum-based hybrid algorithms were consistent and better than classical methods.
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