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Machine Learning Tutorial

Get insights & best practices into AI & machine learning, upskill, and build data cultures. Learn how to get the most out of machine learning models with our tutorials.
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Machine Learning

What is A Confusion Matrix in Machine Learning? The Model Evaluation Tool Explained

See how a confusion matrix categorizes model predictions into True Positives, False Positives, True Negatives, and False Negatives. Keep reading to understand its structure, calculation steps, and uses for handling imbalanced data and error analysis.
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Nisha Arya Ahmed

November 10, 2024

Machine Learning

Loss Functions in Machine Learning Explained

Learn about loss functions in machine learning, including the difference between loss and cost functions, types like MSE and MAE, and their applications in ML tasks.
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Richmond Alake

December 4, 2024

Machine Learning

What is Bagging in Machine Learning? A Guide With Examples

This tutorial provided an overview of the bagging ensemble method in machine learning, including how it works, implementation in Python, comparison to boosting, advantages, and best practices.
Abid Ali Awan's photo

Abid Ali Awan

November 20, 2023

Machine Learning

What is Hugging Face? The AI Community's Open-Source Oasis

Explore the transformative world of Hugging Face, the AI community's open-source hub for Machine Learning and Natural Language Processing.
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Josep Ferrer

November 17, 2023

Machine Learning

What is Topic Modeling? An Introduction With Examples

Unlock insights from unstructured data with topic modeling. Explore core concepts, techniques like LSA & LDA, practical examples, and more.
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Kurtis Pykes

October 19, 2023

Python

Textacy: An Introduction to Text Data Cleaning and Normalization in Python

Discover how Textacy, a Python library, simplifies text data preprocessing for machine learning. Learn about its unique features like character normalization and data masking, and see how it compares to other libraries like NLTK and spaCy.

Mustafa El-Dalil

September 18, 2023

Machine Learning

Machine Learning Experimentation: An Introduction to Weights & Biases

Learn how to structure, log, and analyze your machine learning experiments using Weights & Biases.
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George Boorman

July 4, 2023

Machine Learning

An Introduction to Statistical Machine Learning

Discover the powerful fusion of statistics and machine learning. Explore how statistical techniques underpin machine learning models, enabling data-driven decision-making.
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Joanne Xiong

December 16, 2024

Machine Learning

An Introduction to SHAP Values and Machine Learning Interpretability

Machine learning models are powerful but hard to interpret. However, SHAP values can help you understand how model features impact predictions.
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Abid Ali Awan

June 28, 2023

Machine Learning

Seeing Like a Machine: A Beginner's Guide to Image Analysis in Machine Learning

Discover how computers ‘see’ and interpret images, techniques used to manipulate images, and how machine learning has changed the game.
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Amberle McKee

June 9, 2023

Machine Learning

Containerization: Docker and Kubernetes for Machine Learning

Unleashing the Power of Docker and Kubernetes for Machine Learning Success
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Moez Ali

May 30, 2023