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🍷🍇 K-Means Wine Variety Clustering 🍇🍷

This repository contains an implementation of the K-Means clustering algorithm for wine variety classification. The goal of this project is to cluster wines based on their attributes and identify distinct varieties present in the dataset.

📁 Dataset The dataset used for this project is the Wine dataset, which consists of various attributes such as alcohol content, acidity, and color intensity. The dataset provides a rich collection of features to perform clustering analysis.

🔧 Installation To use this code, you need to have Python 3 and the following dependencies installed:

numpy 📦 pandas 📦 scikit-learn 📦 matplotlib 📦

📊 Results After running the script, the program will output the following:

Cluster assignments for each wine in the dataset. Visualization of the clusters using scatter plots.

📧 Contact If you have any questions, suggestions, or issues, please feel free to open an issue or reach out to us via email at taliqa.muhib@gmail.com

📚 Resources

K-Means Clustering Wikipedia Scikit-Learn Documentation Wine dataset source : https://www.kaggle.com/datasets/brynja/wineuci

🙏 Acknowledgments We would like to express our gratitude to the creators and maintainers of the Wine dataset for providing this valuable resource.

Enjoy clustering the wine varieties with K-Means! 🍷🍇

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