Can you tell? SSNet -- a Sagittal Stratum-inspired Neural Network Framework for Sentiment Analysis
June 23, 2020 ยท Declared Dead ยท ๐ International Conference on Machine Learning, Optimization, and Data Science
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Authors
Apostol Vassilev, Munawar Hasan, Honglan Jin
arXiv ID
2006.12958
Category
cs.CL: Computation & Language
Cross-listed
cs.LG
Citations
1
Venue
International Conference on Machine Learning, Optimization, and Data Science
Last Checked
4 months ago
Abstract
When people try to understand nuanced language they typically process multiple input sensor modalities to complete this cognitive task. It turns out the human brain has even a specialized neuron formation, called sagittal stratum, to help us understand sarcasm. We use this biological formation as the inspiration for designing a neural network architecture that combines predictions of different models on the same text to construct robust, accurate and computationally efficient classifiers for sentiment analysis and study several different realizations. Among them, we propose a systematic new approach to combining multiple predictions based on a dedicated neural network and develop mathematical analysis of it along with state-of-the-art experimental results. We also propose a heuristic-hybrid technique for combining models and back it up with experimental results on a representative benchmark dataset and comparisons to other methods to show the advantages of the new approaches.
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