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FAKE SOCIAL MEDIA PROFILE DETECTION USING MACHINE LEARNING
Details
In today's connected world, social media has become a vital part of our daily lives. From sharing updates and connecting with friends to exchanging ideas and accessing news, these platforms offer immense value. But alongside their popularity, a concerning issue has grown the rise of fake profiles. These accounts can be used for a variety of harmful activities spamming, phishing, spreading misinformation, manipulating opinions, or even harassing others. With millions of users online, it's nearly impossible to identify these profiles manually. This is where intelligent, automated systems come into play. This project focuses on using XGBoost (Extreme Gradient Boosting) a fast and powerful machine learning algorithm that is used to detect fake social media profiles. XGBoost is well-known for handling structured data and performing better than many traditional models, thanks to its boosting technique and inbuilt regularization that helps prevent overfitting. To train the model, we used a dataset containing various features gathered from public user profiles.
Autorentext
Mr. Shlok Tiwari, Artificial Intelligence and Data Science, Sant Gadge Baba Amravati University, Amravati.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09786208436636
- Anzahl Seiten 52
- Genre Technology
- Sprache Englisch
- Herausgeber LAP LAMBERT Academic Publishing
- Untertitel DE
- Größe H220mm x B150mm
- Jahr 2025
- EAN 9786208436636
- Format Kartonierter Einband
- ISBN 978-620-8-43663-6
- Titel FAKE SOCIAL MEDIA PROFILE DETECTION USING MACHINE LEARNING
- Autor SHLOK TIWARI , NIKHIL RECHE , BHAVESH RAUT