Packt
Keras Deep Learning & Generative Adversarial Networks (GAN) Specialization
Packt

Keras Deep Learning & Generative Adversarial Networks (GAN) Specialization

Master GANs and deep learning with Keras. Understand about deep learning and Generative Adversarial Networks using Python and Keras with this comprehensive course.

Sponsored by Coursera Learning Team

Get in-depth knowledge of a subject
Intermediate level

Recommended experience

1 month
at 10 hours a week
Flexible schedule
Learn at your own pace
Get in-depth knowledge of a subject
Intermediate level

Recommended experience

1 month
at 10 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Define key concepts of Artificial Intelligence (AI) and machine learning

  • Describe the basic structure of artificial neurons and neural networks

  • Differentiate between various data structures in Python and their use cases

  • Develop neural network models utilizing the principles of stride, padding, and flattening in CNNs

Details to know

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Taught in English
Recently updated!

September 2024

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Specialization - 3 course series

What you'll learn

  • Identify and define the core concepts of AI and machine learning

  • Explain Python programming fundamentals, including flow control mechanisms, data structures, and functions

  • Utilize essential Python libraries such as NumPy, Matplotlib, and Pandas for data manipulation and visualization

  • Develop and train neural networks using deep learning frameworks like TensorFlow and PyTorch, understanding their architecture and functioning

Skills you'll gain

Category: Applied Machine Learning
Category: Artificial Neural Networks
Category: Artificial Intelligence and Machine Learning (AI/ML)
Category: Deep Learning
Category: Keras (Neural Network Library)
Category: Tensorflow
Category: Machine Learning Methods
Category: Data Science
Category: Artificial Intelligence
Category: Statistical Modeling
Category: Computer Science
Category: NumPy
Category: Matplotlib
Category: Computer Programming
Category: Python Programming
Category: Data Analysis
Category: Regression Analysis
Category: PyTorch (Machine Learning Library)
Category: Machine Learning
Category: Analytics

What you'll learn

  • Identify the key features and functions of the Keras deep learning library

  • Explain the process and importance of exploratory data analysis (EDA) and data visualization

  • Distinguish between different types of Convolutional Neural Networks (CNNs) and their applications in image classification

  • Develop and deploy optimized deep learning models using cloud-based resources

Skills you'll gain

Category: Artificial Intelligence and Machine Learning (AI/ML)
Category: Applied Machine Learning
Category: Keras (Neural Network Library)
Category: Deep Learning
Category: Tensorflow
Category: Artificial Neural Networks
Category: Machine Learning
Category: Data Analysis
Category: Image Analysis
Category: Data Science
Category: Computer Vision
Category: Artificial Intelligence
Category: Statistical Analysis
Category: Exploratory Data Analysis
Category: Machine Learning Methods

What you'll learn

  • Understand the principles and architecture of GANs

  • Explain how to implement and train GAN models for image synthesis

  • Apply techniques to optimize GAN models for improved performance

  • Evaluate and interpret GAN-generated images

Skills you'll gain

Category: Artificial Intelligence
Category: Artificial Intelligence and Machine Learning (AI/ML)
Category: Generative AI
Category: Deep Learning
Category: Applied Machine Learning
Category: Artificial Neural Networks
Category: Tensorflow
Category: Machine Learning
Category: Keras (Neural Network Library)
Category: Data Presentation
Category: Machine Learning Methods
Category: Statistical Visualization
Category: Exploratory Data Analysis
Category: Plot (Graphics)
Category: Cloud Platforms
Category: Google Cloud Platform
Category: Cloud Services
Category: Computer Science
Category: Public Cloud
Category: Cloud Computing

Instructor

Packt - Course Instructors
Packt
375 Courses32,870 learners

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Packt

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