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waste-classification

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AI-powered-Waste-Classification-System-using-deep-learning

AI-powered waste classification system using deep learning, Combines a custom CNN and EfficientNet (transfer learning). Achieves 99% training and 95% validation accuracy. Classifies images into cardboard, glass, metal, paper, plastic, and trash. Includes prediction, evaluation, and visualization tools.

  • Updated Jan 20, 2026
  • Jupyter Notebook

This project automates trash sorting using a Raspberry Pi-controlled robotic arm, leveraging TensorFlow Lite and OpenCV for real-time classification of paper, plastic, and metal waste.

  • Updated Jul 16, 2024
  • Python

Trash Classification adalah proyek Computer Vision untuk mengklasifikasikan jenis sampah menggunakan model deep learning berbasis CNN. Model ini dirancang untuk mengenali berbagai kategori sampah secara akurat dan efisien. Dikembangkan untuk mendukung pengelolaan sampah. Proyek ini dikembangkan untuk ajang Penyisihan Hackta AI 2026

  • Updated Jan 25, 2026
  • Jupyter Notebook

EcoWaste AI uses MobileNetV2 to classify waste as organic or recyclable and a RandomForest model to estimate CO₂ savings based on item weight. It helps users make better disposal choices by providing predictions, confidence scores, carbon-impact estimates, and simple eco-tips through an easy interactive interface.

  • Updated Oct 22, 2025
  • Jupyter Notebook

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