Datasets:
Matthew Franglen
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README.md
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@@ -100,13 +100,17 @@ where a triplet consists of (target, opinion, sentiment).
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Sentiment analysis is increasingly viewed as a vital task both from an academic and a commercial standpoint.
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The majority of current approaches, however, attempt to detect the overall polarity of a sentence, paragraph, or text span, regardless of the entities mentioned (e.g., laptops, restaurants) and their aspects (e.g., battery, screen; food, service).
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By contrast, this task is concerned with aspect based sentiment analysis (ABSA), where the goal is to identify the aspects of given target entities and the sentiment expressed towards each aspect.
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### Dataset Source
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The ASTE dataset is from the [xuuuluuu/SemEval-Triplet-data](https://github.com/xuuuluuu/SemEval-Triplet-data) repository.
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It is based on the
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### Dataset Details
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Sentiment analysis is increasingly viewed as a vital task both from an academic and a commercial standpoint.
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The majority of current approaches, however, attempt to detect the overall polarity of a sentence, paragraph, or text span, regardless of the entities mentioned (e.g., laptops, restaurants) and their aspects (e.g., battery, screen; food, service).
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By contrast, this task is concerned with aspect based sentiment analysis (ABSA), where the goal is to identify the aspects of given target entities and the sentiment expressed towards each aspect.
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This dataset consists of customer reviews with human-authored annotations identifying the mentioned aspects of the target entities and the sentiment polarity of each aspect.
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### Dataset Source
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The ASTE dataset is from the [xuuuluuu/SemEval-Triplet-data](https://github.com/xuuuluuu/SemEval-Triplet-data) repository.
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It is based on the Sem Eval 2014, 2015 and 2016 datasets, with some preprocessing applied to the text.
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* [Sem Eval 2014 Task 4](https://alt.qcri.org/semeval2014/task4/)
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* [Sem Eval 2015 Task 12](https://alt.qcri.org/semeval2015/task12/)
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* [Sem Eval 2016 Task 5](https://alt.qcri.org/semeval2016/task5/)
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### Dataset Details
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