CSE 473 Introduction to Artificial Intelligence Neural Networks - PowerPoint PPT Presentation

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CSE 473 Introduction to Artificial Intelligence Neural Networks

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Title: CSE 473 Introduction to Artificial Intelligence Neural Networks


1
CSE 473Introduction to Artificial
IntelligenceNeural Networks
  • Henry Kautz
  • Autumn 2003

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Perceptron (sigmoid unit)
weighted sum of inputs
constant term
soft threshold
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Training a Neuron
  • Idea adjust weights to reduce sum of squared
    errors over training set
  • Error difference between actual and intended
    output
  • Algorithm gradient descent
  • Calculate derivative (slope) of error function
  • Take a small step in the downward direction
  • Step size is the training rate

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Gradient of the Error Function
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Gradient of the Error Function
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Single Unit Training Rule
  • In short adjust weights on inputs that were on
    in proportion to the error and the size of the
    output

10
Beyond Perceptrons
  • Single units can learn any linear function
  • Single layer of units can learn any set of linear
    inequalities
  • Adding additional layers of hidden units
    between input and output allows any function to
    be learned!
  • Hidden units trained by propagating errors back
    through the network

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Character Recognition Demo
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