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Data Labeling in Machine Learning with Python

Data Labeling in Machine Learning with Python

By : Vijaya Kumar Suda
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Data Labeling in Machine Learning with Python

Data Labeling in Machine Learning with Python

5 (3)
By: Vijaya Kumar Suda

Overview of this book

Data labeling is the invisible hand that guides the power of artificial intelligence and machine learning. In today’s data-driven world, mastering data labeling is not just an advantage, it’s a necessity. Data Labeling in Machine Learning with Python empowers you to unearth value from raw data, create intelligent systems, and influence the course of technological evolution. With this book, you'll discover the art of employing summary statistics, weak supervision, programmatic rules, and heuristics to assign labels to unlabeled training data programmatically. As you progress, you'll be able to enhance your datasets by mastering the intricacies of semi-supervised learning and data augmentation. Venturing further into the data landscape, you'll immerse yourself in the annotation of image, video, and audio data, harnessing the power of Python libraries such as seaborn, matplotlib, cv2, librosa, openai, and langchain. With hands-on guidance and practical examples, you'll gain proficiency in annotating diverse data types effectively. By the end of this book, you’ll have the practical expertise to programmatically label diverse data types and enhance datasets, unlocking the full potential of your data.
Table of Contents (18 chapters)
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1
Part 1: Labeling Tabular Data
5
Part 2: Labeling Image Data
9
Part 3: Labeling Text, Audio, and Video Data

Exploring Image Data

In this chapter, we will learn how to explore image data using various packages and libraries in Python. We will also see how to visualize images using Matplotlib and analyze image properties using NumPy.

Image data is widely used in machine learning, computer vision, and object detection across various real-world applications.

The chapter is divided into three key sections covering visualizing image data, analyzing image size and aspect ratios, and performing transformations on images. Each section focuses on a specific aspect of image data analysis, providing practical insights and techniques to extract valuable information.

In the first section, Visualizing image data, we will utilize the Matplotlib, Seaborn, Python Imaging Library (PIL), and NumPy libraries and explore techniques such as plotting histograms of pixel values for grayscale images, visualizing color channels in RGB images, adding annotations to enhance image interpretation, and performing...

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