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Semantic Parsing for Aspect Based Sentiment Analysis
Author(s) -
Muhammad Aqeel,
Francesco Setti
Publication year - 2025
Publication title -
ieee access
Language(s) - English
Resource type - Magazines
SCImago Journal Rank - 0.587
H-Index - 127
eISSN - 2169-3536
DOI - 10.1109/access.2025.3588301
Subject(s) - aerospace , bioengineering , communication, networking and broadcast technologies , components, circuits, devices and systems , computing and processing , engineered materials, dielectrics and plasmas , engineering profession , fields, waves and electromagnetics , general topics for engineers , geoscience , nuclear engineering , photonics and electrooptics , power, energy and industry applications , robotics and control systems , signal processing and analysis , transportation
This study introduces the Semantic Parsing Tree (SPT), a novel framework designed to enhance Aspect-Based Sentiment Analysis (ABSA). By integrating advanced attention mechanisms, our approach overcomes the limitations of traditional dependency trees, which often fail to capture the complex semantic relationships crucial for accurate sentiment prediction, particularly in intricate sentence constructs such as nested clauses or implicit sentiments. Converting syntactic trees into SPTs enables our model to preserve and analyze key semantic roles and relationships, facilitating precise sentiment analysis at the aspect level. The integration of SPT with an advanced graph-based attention mechanism, augmented by relational heads, enhances the deep encoding of semantic nuances, significantly improving sentiment analysis accuracy. Comprehensive evaluations across benchmark datasets, including SemEval 2014, Restaurant, and Twitter, indicate that this approach outperforms conventional models in both accuracy and adaptability.

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