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This repository contains code for aspect-based sentiment analysis for the "restaurant" domain. Ref. paper:

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Priyansh2/Abstract-Based-Sentiment-Detection

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This repository contains code for aspect-based sentiment analysis (ABSA) for the "restaurant" domain. The task is to find the sentiment polarity (positive, negative, neutral) of a given sentence corresponding to the aspect term. For instance, consider the review:- "The appetizers are ok, but the service is slow". This review/sentence has 'positive' polarity for aspect 'taste '. The polarity is 'negative' for aspect 'service.'

Note:

The word2vec and glove are excluded from the repository and have to be download separately. baseline.ipynb uses word2vec and glove word-embeddings.

TODO:

  1. Experiment with different word-embeddings approaches.
  2. Experiment with architectures such as Hierarchical Attention models using Bi-GRUs, CNNs.
  3. Experiment on different standard datasets in aspect-based sentiment analysis such as "laptop customer reviews".

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