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π΅ A Python-based content recommendation system utilizing ML algorithms and matrix factorization techniques to analyze 600k-song dataset. Combines SVD, NMF, Factorization Machines, and Direct Similarity for personalized music suggestions. Handles cold start, optimizes with weighted similarity, and includes tools for visualization & evaluation.
This project analyzes Netflix's content library using SQL. It explores content type distribution, rating trends, country-wise content availability, and genre classification to extract meaningful insights from Netflix data for better analysis.
A comprehensive Power BI dashboard providing analytical insights into movie industry data including box office performance, ratings, genres, director/actor metrics, and trends. Analyzes budget vs revenue, release timing impact, and audience preferences.
Data analysis and visualization of Netflixβs catalog (2011β2025) using Kaggle datasets. The project explores content growth, genres, ratings, popularity, durations, and global distribution, with interactive dashboards highlighting key trends.
Exploratory analysis of Amazon Prime Videoβs global catalog, highlighting trends in content distribution, genres, audience ratings, and release patterns using a Kaggle dataset.
An Exploratory Data Analysis (EDA) of Netflix's 2021 content catalog using the Kaggle dataset. This project covers data cleaning, content categorization, and temporal and geographic insights. The analysis explores trends in Netflix's movies and TV shows, including ratings, genres, release patterns, and geographic production distribution.
π This project explores Netflix's movie and TV show dataset using SQL to uncover insights about content trends, ratings, genres, and release patterns. The analysis includes data cleaning, querying, and visualization to understand Netflix's content strategy.