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Applying TF-IDF and BERT-based Variants under Multilabel Classification for Emotion Detection in Urdu Language

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dc.contributor.author Sharma, Yashvardhan
dc.date.accessioned 2024-11-14T06:35:35Z
dc.date.available 2024-11-14T06:35:35Z
dc.date.issued 2022
dc.identifier.uri https://ceur-ws.org/Vol-3395/T4-7.pdf
dc.identifier.uri http://dspace.bits-pilani.ac.in:8080/jspui/handle/123456789/16368
dc.description.abstract Nowadays, the use of emojis is very common to show our emotions with just a single image instead of long sentences describing our emotions. Each emoji describes a particular emotion, such as anger, disgust, fear, sadness, surprise, and happiness. Now if we are given a task to identify emotions in a text, that means we have to tag a text with multiple emojis, each pointing to a different emotion. This paper aims to check for multiple emotions in an Urdu text, which comes under the category of multi-label classification. We have used pre-trained BERT models to add basic knowledge about a language (Urdu in our case). Over the pre-trained model, we added the classification layer using PyTorch. The output layer has seven nodes, six of which are for six emotions, and the seventh is for neutral. FIRE 2022 provided the Urdu tweet dataset used here as part of the subtask ”Multi-label emotion classification in Urdu” of the main task ”Emothreat: Emotion and Threat detection in Urdu.” en_US
dc.language.iso en en_US
dc.publisher CEUR-WS en_US
dc.subject Computer Science en_US
dc.subject Social media en_US
dc.subject UrduHack en_US
dc.subject BERT en_US
dc.subject Multi-label classification en_US
dc.subject Negative weight en_US
dc.subject Positive weight en_US
dc.subject Transformers model en_US
dc.subject Text classification en_US
dc.title Applying TF-IDF and BERT-based Variants under Multilabel Classification for Emotion Detection in Urdu Language en_US
dc.type Article en_US


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