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Can I read Graph Neural Network Framework for Sentiment Analysis Using Syntactic Feature on EtoBox?
Graph Neural Network Framework for Sentiment Analysis Using Syntactic Feature by Wu, Linxiao; Luo, Yuanshuai; Zhu, Binrong; Liu, Guiran; Wang, Rui; Yu, Qian is a scholarly article available to read on EtoBox.
What is Graph Neural Network Framework for Sentiment Analysis Using Syntactic Feature about?
Amidst the swift evolution of social media platforms and e-commerce ecosystems, the domain of opinion mining has surged as a pivotal area of exploration within natural language processing. A specialized segment within this field focuses on extracting nuanced evaluations tied to particular elements within textual contexts. This research advances a composite framework that amalgamates the positional cues of topical descriptors. The proposed system converts syntactic structures into a matrix format, leveraging convolutions and attention mechanisms within a graph to distill salient characteristics. Incorporating the positional relevance of descriptors relative to lexical items enhances the sequential integrity of the input. Trials have substantiated that this integrated graph-centric scheme markedly elevates the efficacy of evaluative categorization, showcasing preeminence.
- Author
- Wu, Linxiao; Luo, Yuanshuai; Zhu, Binrong; Liu, Guiran; Wang, Rui; Yu, Qian
- Published
- 2024
- Language
- EN