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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
Testimonials (3)
Hunter is fabulous, very engaging, extremely knowledgeable and personable. Very well done.
Rick Johnson - Laramie County Community College
Course - Artificial Intelligence (AI) Overview
I liked the new insights in deep machine learning.
Josip Arneric
Course - Neural Network in R
Ann created a great environment to ask questions and learn. We had a lot of fun and also learned a lot at the same time.