Projects with this topic
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The main project for OctoMY™ - Ready-to-run robot software
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FOMC rate decision predictor using ML bronze->silver->gold methods
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🛒 AI chat & product/category summaries in Amazon shopping, powered by the latest LLMsUpdated -
Meetup PyMX Septiembre 2023 Usando Servicios Administrados de AI de AWS con Python y Boto3
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Practical tasks on Deep Learning (DL) and Neural Networks (NN).
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A conversational AI chatbot built using Next.js and Node.js with text + voice chat, GitLab CI/CD, SAST security, issues, labels, milestones, and merge request workflow.
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Fundamental theory and practice in Machine Learning (ML) and Data Science (DS).
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A set of data science and machine learning projects exploring various datasets — a place to test ideas, models, and analytical approaches.
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A comprehensive Python toolkit for analyzing protein structures and small molecules using real datasets from RCSB PDB and FDA-approved drugs.
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A libre smart powered comic book reader for Android.
❗ Note: This is a mirror. Check GitHub repository.UpdatedUpdated -
A comprehensive machine learning pipeline for classifying astronomy images into 6 categories of celestial objects, featuring advanced data preprocessing, exploratory data analysis, and deep learning classification models.
https://huggingface.co/spaces/Saqib772/Astronomy_image_classfication
Kaggle Notebook: https://www.kaggle.com/code/saqibiqbal2/astronomy-image-classification
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A Computer Vision algorithm for Malaria parasite detection and classification in digital images of thick blood smears.
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Here’s the source code for my exploratory data analysis and model training for a movie recommendation system. The main model deployment code is in this repository.
Deployment Repo: (https://gitlab.com/aydie/ml-model-netflix-recommendation-system)
Website: aydie.in Contact: business@aydie.in
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House Prices Competition on Kaggle
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Een MLFlow wrapper die het makkelijk maakt om samen in dezelfde MLFlow omgeving te werken met bijvoorbeeld Teams. Maakt het daarnaast makkelijker om met standaard machine learning packages (nu alleen nog scikit-learn) modellen en scores te loggen.
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A comprehensive exploration of various machine learning algorithms, including supervised, unsupervised, and reinforcement learning methods. This project will implement, analyze, and optimize algorithms like decision trees, random forests, SVMs, and neural networks, providing hands-on experience in selecting and applying them for different use cases.
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