Oct

09

2019

Transfer Learning for Images Using PyTorch: Essential Trainings

Laser 9 Oct 2019 08:34 LEARNING » e-learning - Tutorial

Transfer Learning for Images Using PyTorch: Essential Trainings
MP4 | Video: AVC, 1280x720 30 fps | Audio: AAC, 48 KHz, 2 Ch | Duration: 58m 35s
Skill Level: Intermediate | Genre: eLearning | Language: English + Subtitles | Size: 143 MB
After its debut in 2017, PyTorch quickly became the tool of choice for many deep learning researchers.

In this course, Jonathan Fernandes shows you how to leverage this popular machine learning framework for a similarly buzzworthy technique: transfer learning. Using a hands-on approach, Jonathan explains the basics of transfer learning, which enables you to leverage the pretrained parameters of an existing deep-learning model for other tasks. He then shows how to implement transfer learning for images using PyTorch, including how to create a fixed feature extractor and freeze neural network layers. Plus, find out about using learning rates and differential learning rates.

Topics include:

What is transfer learning?

Using autograd

Creating a fixed feature extractor

Training an extractor

Fine-tuning the ConvNet

Learning rates and differential learning rates

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