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Project

A multilingual, machine learning platform for aspect-based sentiment and emotion analysis

In this project, we aim to develop a fine-grained aspect-based sentiment and emotion analysis architecture, which is multilingual (English, Dutch, French and German) and which is completely data-driven. The system should also be adaptable: users should be able to correct the output of the system on their data as the basis for retraining the system on the corrected data, leading to a more qualitative output which becomes increasingly tailored to company-specific data. The prototype will also be accompanied by two dashboards: a dashboard which provides a comprehensive visulatisation of the data and an annotation dashboard which allows to correct data and retrain the machine learning architecture.   

 

Date:1 Jan 2021 →  31 Dec 2022
Keywords:machine learning, aspect-based sentiment analysis, emotion detection, natural language processing
Disciplines:Computational linguistics