This repository contains my practice of Introduction to Computer Vision and Image Processing lab notebooks.
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Updated
Oct 26, 2022 - Jupyter Notebook
This repository contains my practice of Introduction to Computer Vision and Image Processing lab notebooks.
This project is designed for personal learning and exploration of fundamental machine learning concepts.
This repository is made following the course by Sir Jose Portilla, and focuses on Supervised Machine Learning algorithms. I studied all these concepts in December 2023
Collection of supervised machine learning notebooks
Jupyter notebooks for learning machine learning tools.
Supervised Machine Learning | Neural Network | Jupyter Notebook | Python | Scikit library
My notebooks when i was learning Machine Learning with scikit-learn.
A hub that contains notebooks that implement Regression models, illustrates LR via Gradient Descent, compares K-means vs Spectral vs Hierarchical, compares PCA vs t-SNE
Github repo for ML Specialization course on Coursera. Contains notes and practice python notebooks.
The notebook provides a step-by-step guide to preparing and analyzing geospatial data and creating a target map using supervised ml techniques.
Notebook used to evaluate various machine learning models used to predict white wine quality.
This repository contains a Jupyter notebook completed as part of the "Python Project for Data Science" module of the IBM Data Science Professional Certificate. In the second notebook, the same stock data is used to make predictions using ML.
Notebooks con ejercicios y ejemplos del libro Hands on Machine Learning with scikit-learn and tensorflow 2
This repository contains a Jupyter Notebook that compares the performance of Convolutional Neural Network (CNN) and Recurrent Neural Network (RNN) architectures for image classification tasks using the Fashion MNIST dataset. The notebook explores the process of training CNN and RNN models
A collection of notebooks and scripts covering essential data science concepts. Includes data manipulation, cleaning, analysis, and visualization techniques.
Predicting if a customer will default the next credit card payment using supervised machine learning. Python jupyter notebook attached.
An analysis of potential charity donors using Python Jupyter Notebook. Features cleaning of data, exploration, supervised machine learning and insights.
A collection of machine learning mini-projects and analyses developed using Jupyter Notebook. Each project demonstrates practical applications of machine learning algorithms on a variety of datasets, covering techniques from exploratory data analysis (EDA) to model training and evaluation.
these are my projects that i submitted for AIML course with great lakes & some good notebooks with great explaination of the topics
This repository contains curated resources, notebooks, and exercise solutions for Machine Learning Specialization course by Stanford Univeristy and DeepLearning.AI (2026) by Prof. Andrew NG
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