Course Outline

Deep Learning vs Machine Learning vs Other Methods

  • When Deep Learning is Suitable for Government
  • Limits of Deep Learning in Government Applications
  • Comparing Accuracy and Cost of Different Methods for Government Use

Methods Overview

  • Nets and Layers for Government Projects
  • Forward / Backward: The Essential Computations of Layered Compositional Models in Government Systems
  • Loss: Defining the Task to Be Learned by the Loss Function for Government Applications
  • Solver: Coordinating Model Optimization for Government Use
  • Layer Catalogue: The Layer as the Fundamental Unit of Modeling and Computation in Government Systems
  • Convolution for Government Applications

Methods and Models

  • Backpropagation and Modular Models for Government Use
  • Logsum Module for Government Projects
  • RBF Net for Government Applications
  • MAP/MLE Loss for Government Systems
  • Parameter Space Transforms for Government Use
  • Convolutional Module for Government Projects
  • Gradient-Based Learning for Government Applications
  • Energy for Inference in Government Systems
  • Objective for Learning in Government Applications
  • PCA; NLL for Government Use
  • Latent Variable Models for Government Projects
  • Probabilistic Latent Variable Models for Government Applications
  • Loss Function for Government Systems
  • Detection with Fast R-CNN for Government Use
  • Sequences with LSTMs and Vision + Language with LRCN for Government Projects
  • Pixelwise Prediction with FCNs for Government Applications
  • Framework Design and Future for Government Systems

Tools

  • Caffe for Government Use
  • TensorFlow for Government Projects
  • R for Government Applications
  • Matlab for Government Systems
  • Other Tools for Government Use...

Requirements

Any programming language knowledge is required. Familiarity with Machine Learning is not required but is beneficial for government applications.

 21 Hours

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Price per participant

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