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Sentiment Analysis for Restaurant Reviews (NLP) #584
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@abhisheks008 Sir I have a created a PR, can you please assign me under JWOC,. I need to create a classification model. |
This project repo is solely based on machine learning methods, instead of NLP methods (For those models we have Deep Learning Simplified Repository). Can you brief the issue w.r.t. ML-Crate. |
@abhisheks008 here we need to create a classification model to predict whether the review is positive or negative using various ml algorithms like naive bayes, random forest algorithm, logistic regression. nlp is because the review is in our natural language, like review it was fantastic. so we need to first clean our review data by removing stopwords, punctuation, perform eda, then vectorize our review, andd then create a ml model. |
@abhisheks008 before we create ml model we need to do tokenization of review column |
Issue assigned under JWOC 2024 @ghousiya47 |
ML-Crate Repository (Proposing new issue)
🔴 Project Title : Sentiment Analysis for Restaurant Reviews (NLP)
🔴 Aim : Perform EDA and predict the review, positive or negative
🔴 Dataset : https://www.kaggle.com/datasets/d4rklucif3r/restaurant-reviews
🔴 Approach : Try to use 3-4 algorithms to implement the models and compare all the algorithms to find out the best fitted algorithm for the model by checking the accuracy scores. Also do not forget to do a exploratory data analysis before creating any model.
📍 Follow the Guidelines to Contribute in the Project :
requirements.txt
- This file will contain the required packages/libraries to run the project in other machines.Model
folder, theREADME.md
file must be filled up properly, with proper visualizations and conclusions.🔴🟡 Points to Note :
✅ To be Mentioned while taking the issue :
Happy Contributing 🚀
All the best. Enjoy your open source journey ahead. 😎
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