Avoid Overfitting Using Regularization in TensorFlow

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Avoid Overfitting Using Regularization in TensorFlow provided by Coursera is a comprehensive online course, which lasts for 2 hours worth of material. Avoid Overfitting Using Regularization in TensorFlow is taught by Amit Yadav. Upon completion of the course, you can receive an e-certificate from Coursera. The course is taught in Englishand is Paid Course. Visit the course page at Coursera for detailed price information.

Overview
  • In this 2-hour long project-based course, you will learn the basics of using weight regularization and dropout regularization to reduce over-fitting in an image classification problem. By the end of this project, you will have created, trained, and evaluated a Neural Network model that, after the training and regularization, will predict image classes of input examples with similar accuracy for both training and validation sets.

    Note: This course works best for learners who are based in the North America region. We’re currently working on providing the same experience in other regions.