Deep Learning Using SAS® Software
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Deep Learning Using SAS® Software
Duration: 14 hours
DMLS : DLUS41
This course introduces the pivotal components of deep learning. You learn how to build deep feedforward, convolutional, and recurrent networks. Neural networks are used to solve problems that include traditional classification, image classification, and sequence-dependent outcomes. The course contains a healthy mix of theory and application. Hands-on demonstration and practice problems are included to reinforce key concepts. Hyperparameter search methods are described and demonstrated to find an optimal set of deep learning models. Lastly, transfer learning is covered because the emergence of this field has shown promise in deep learning.
Learn How To
  • Define and understand deep learning.
  • Build traditional, convolutional, and recurrent neural networks using deep learning techniques.
  • Apply models to score new data.
  • Search the hyperparameter space of a deep learning model.
  • Leverage transfer learning using supervised and unsupervised methods.
  • Who Should Attend
    Machine learners and those interested in deep learning, computer vision, or natural language processing
    Prerequisites
    Before attending this course, you should have at least an introductory-level familiarity with basic neural network modeling and basic machine learning. You can gain this experience by completing the Machine Learning Using SAS Viya course or the Neural Networks: Essentials course. Previous SAS software experience is helpful but not required.
    SAS Products Covered
    SAS Viya;SAS Machine Learning
    Course Outline
    Introduction to Deep Learning
  • Introduction to neural networks.
  • Introduction to deep learning.
  • Autoencoders.
  • Convolutional Neural Networks
  • Introduction to convolutional neural networks.
  • Structure of a convolutional neural network.
  • Building and training a convolutional neural network.
  • Recurrent Neural Networks
  • Introduction to recurrent neural networks.
  • Word embedding.
  • Subtypes of recurrent neural networks.
  • Tuning a Neural Network
  • Selecting hyperparameters.
  • Transfer Learning and Customization
  • Transfer learning.
  • Customization using the SAS Function Compiler.

  • Live Instructor Dates SOLD SEPARATELY
    DATES ▼ LOCATION
    TIME
    LANGUAGEEVENT FEE
    17-20 JUN 2025Live Web, US1:00 PM-4:30 PM EDTEnglish1,600 USD


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