recipe-recommender
v1.0.0
Published
aims to develop a web application that provides personalized recipe recommendations to users based on their culinary preferences, dietary restrictions, and cooking history.
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Recipe Recommender
Description:
The Recipe Recommender project aims to develop a web application that provides personalized recipe recommendations to users based on their culinary preferences, dietary restrictions, and cooking history. Leveraging machine learning algorithms and collaborative filtering techniques, the application will suggest relevant and engaging recipes to enhance users' cooking experiences and inspire culinary exploration.
Features:
User Profiling: Analyzes users' cooking habits, ingredient preferences, and dietary restrictions to create personalized profiles.
Recommendation Engine: Utilizes machine learning algorithms such as collaborative filtering and content-based filtering to generate accurate and relevant recipe suggestions.
Customization Options: Allows users to specify cuisine preferences, ingredient allergies, dietary preferences (e.g., vegan, gluten-free), and cooking skill levels to receive tailored recommendations.
Recipe Rating and Reviews: Enables users to rate recipes, leave reviews, and provide feedback, fostering a community-driven platform for sharing culinary experiences.
Ingredient Substitution: Provides suggestions for ingredient substitutions based on user preferences or dietary requirements, ensuring flexibility and adaptability in recipe recommendations.
Real-Time Updates: Offers real-time recommendations based on user interactions and dynamically adjusts suggestions as users' preferences evolve.
Cross-Platform Compatibility: Supports integration with various cooking apps and platforms, ensuring accessibility across desktop and mobile devices.