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Overivew and Tutorial
Jim O’ Donoghue
Deep Learning Meetup @Intercom, Stephens Green
7th April 2016
my background
machine learning function elements
my background
machine learning function elements
hypothesis functions (NN architectures)
objective functions
optimisation
my background
machine learning function elements
hypothesis functions (NN architectures)
objective functions
optimisation
linear regression
multi-layer perceptron
my background
machine learning function elements
input types
hypothesis functions (NN architectures)
objective functions + optimisation
output types
regression
multi-layer Perceptron
Continuous
Discrete
Categorical
Nominal
Ordinal
Supervised
Unsupervised
Semi-Supervised
Feature
Supervised
Unsupervised
Semi-Supervised
Feature
yπ‘₯
yπ‘₯
yπ‘₯
yπ‘₯ 𝑓 π‘₯
y𝑦+πœ–π‘₯ 𝑓 π‘₯
y𝑦+πœ–π‘₯ 𝑓 π‘₯
y𝑦+πœ–π‘₯
Optimisation
𝑓 π‘₯
y𝑦+πœ–π‘₯
Optimisation + Hyper-Parameters
𝑓 π‘₯
y𝑦+πœ–π‘₯
hypothesis
β„Ž π‘₯
y𝑦+πœ–π‘₯ β„Ž π‘₯
output
y𝑦+πœ–π‘₯ β„Ž π‘₯
calculated by ...
y𝑦+πœ–π‘₯ β„Ž 𝜽 π‘₯
calculated by ...
y𝑦+πœ–π‘₯ β„Ž πœƒ π‘₯
objective
y𝑦+πœ–π‘₯ β„Ž 𝜽 π‘₯
optimise
27
Hypothesis Functions β„Ž π‘₯
28
Hypothesis Functions β„Ž π‘₯
Hypothesis Functions β„Ž π‘₯
calculate outputs via𝑦
πœƒ = {Weights, bias}
calculate outputs via
πœƒ = {Weights, bias}
calculate outputs via
n activation functions
πœƒ = {Weights, bias}
calculate outputs via
n activation functions
interim
πœƒ = {Weights, bias}
calculate outputs via
interim functions
Linear
πœƒ = {Weights, bias}
calculate outputs via
interim functions
Linear
Tanh
Cosh
Logistic Sigmoid
Recitified Linear
{non
linear
πœƒ = {Weights, bias}
calculate outputs via
β„Ž π‘₯ = 𝑔(𝑓 π‘₯ )
πœƒ = {Weights, bias}
calculate outputs via
β„Ž π‘₯ = 𝑔(𝑓(𝑔(𝑓 π‘₯ ))
loss/cost/error
y𝑦+πœ–
y βˆ’ π‘¦πœ–
loss/cost/error
y βˆ’ π‘¦πœ–J(πœƒ)
loss/cost/error
gradient descent
πœƒ
𝐽(πœƒ)
πœƒ
𝐽(πœƒ)
gradient descent
πœƒ
𝐽(πœƒ)
gradient descent
πœƒ
𝐽(πœƒ)
gradient descent
πœ•π½(πœƒ)
πœ•πœƒ
A. get partial derivative
gradient descent
πœƒ
𝐽(πœƒ)
gradient descent
πœƒ
𝐽(πœƒ)
gradient descent
πœƒ ≔ πœƒ βˆ’ 𝛼
πœ•π½(πœƒ)
πœ•πœƒ
πœ•π½(πœƒ)
πœ•πœƒ
A. get partial derivative
B. update the parameters
gradient descent
πœƒ
𝐽(πœƒ)
gradient descent
πœƒ
𝐽(πœƒ)
gradient descent
πœƒ
𝐽(πœƒ)
gradient descent
πœƒ
𝐽(πœƒ)
gradient descent
πœƒ
𝐽(πœƒ)
π‘™π‘’π‘Žπ‘Ÿπ‘›π‘–π‘›π‘” π‘Ÿπ‘Žπ‘‘π‘’
𝛼
gradient descent
54πœƒ
𝐽(πœƒ)
gradient descent
global optimim
55πœƒ
𝐽(πœƒ)
gradient descent
local optimum
first...
the activation
Connection
Weights
Class
Input
Features
the activation
Connection
Weights
Class
Input
Features
the activation
π‘₯
𝑦
πœƒ = {Weights, bias}
the activation
π‘₯
𝑦
πœƒ = {Weights, bias}
𝑦 = 𝑓 π‘₯
the activation
π‘₯
𝑓(π‘₯)
πœƒ = {Weights, bias}
𝑦 = 𝑓 π‘₯ = π‘Žπ‘₯ + 𝑏
the activation
π‘₯
𝑓 πœƒ(π‘₯)
πœƒ = {Weights, bias}
𝑦 = 𝑓 πœƒ π‘₯ = 𝑀π‘₯ + 𝑏
the activation
π‘₯
𝑓 πœƒ(π‘₯)
πœƒ = {Weights, bias}
𝑦 = 𝑓 πœƒ π‘₯ = 𝑀π‘₯ + 𝑏
= πœƒ 𝑇
π‘₯
the activation
π‘₯
𝑓 πœƒ(π‘₯)
πœƒ = {Weights, bias}
𝑦 = 𝑓 πœƒ π‘₯ = 𝑀π‘₯ + 𝑏
= πœƒ 𝑇 π‘₯
=
𝑖=1
𝑛
𝑀𝑖 π‘₯𝑖 + 𝑏
the activation for
π‘₯
𝑧
πœƒ = {Weights, bias}
𝑧 = 𝑓 πœƒ π‘₯
= πœƒ 𝑇 π‘₯
= 𝑀 𝑇 π‘₯ + 𝑏
y βˆ’ π‘¦πœ–J(πœƒ)
one sample
1
π‘š
𝑠=1
π‘š
(𝑦 𝑠 βˆ’ 𝑦 𝑠)2
all samples
J(πœƒ)
1
2π‘š
𝑠=1
π‘š
(𝑦 𝑠 βˆ’ 𝑦 𝑠)2
all samples
J(πœƒ)
1
π‘š
𝑠=1
π‘š
(𝑦 𝑠 βˆ’ 𝑦 𝑠)π‘₯ 𝑠
partial derivative
πœ•π½(πœƒ)
πœ•πœƒ
Ξ΄π‘₯ 𝑠
partial derivative
πœ•π½(πœƒ)
πœ•πœƒ
πœƒ ≔ πœƒ βˆ’ 𝛼
1
π‘š
𝑠=1
π‘š
(𝑦 𝑠 βˆ’ 𝑦 𝑠)π‘₯ 𝑠
update
the activation for
Connection
Weights
Class
Input
Features
Connection
Weights
Class
Input
Features
the activation
π‘₯
𝑔(𝑧)
𝑧 = 𝑓 πœƒ π‘₯
π‘Ž = 𝑔 𝑧
=
1
1+π‘’βˆ’π‘§
the activation
the activation
π‘₯
π‘Ž
𝑧 = 𝑓 πœƒ π‘₯
π‘Ž = 𝑔 𝑧
p(a = 1|π‘₯, πœƒ) =
1
1+π‘’βˆ’π‘§
hypothesis
𝑦 = β„Ž π‘₯ = 𝑓 πœƒ2 π‘Ž1
π‘₯
π‘Ž1
𝑦
hypothesis
𝑦 = β„Ž π‘₯ = 𝑓 πœƒ2 π‘Ž1
π‘₯
π‘Ž1
𝑦
π‘Ž1 = 𝑔 𝑧 =
1
1 + π‘’βˆ’π‘§
𝑧1 = 𝑓 πœƒ1 π‘₯ = 𝑀1 𝑇 π‘₯ + 𝑏
hypothesis
𝑦 = β„Ž π‘₯ = 𝑓 πœƒ2 π‘Ž1
π‘₯
π‘Ž1
𝑦
π‘Ž1 = 𝑔 𝑧 =
1
1 + π‘’βˆ’π‘§
𝑧1 = 𝑓 πœƒ1 π‘₯ = 𝑀1 𝑇 π‘₯ + 𝑏
hypothesis
π‘₯
π‘Ž1
𝑦
β„Ž π‘₯ = 𝑓(𝑔(𝑓 π‘₯ )
the error function
π‘₯
π‘Ž1
𝑦
1
2π‘š
𝑠=1
π‘š
(𝑦 𝑠 βˆ’ 𝑦 𝑠)2
J(πœƒ)
the partial derivative
π‘₯
π‘Ž1
𝑦
πœ•π½(πœƒ2)
πœ•πœƒ2
1
π‘š
𝑠=1
π‘š
(𝑦 𝑠 βˆ’ 𝑦 𝑠)π‘Ž1
𝑠
the partial derivative
π‘₯
π‘Ž1
𝑦
πœ•π½(πœƒ2)
πœ•πœƒ2
πœ•π½(πœƒ2)
πœ• 𝑦
πœ• 𝑦
πœ•πœƒ2
the partial derivative
π‘₯
π‘Ž1
𝑦
πœ•π½(πœƒ2)
πœ•πœƒ2
πœ•π½(πœƒ2)
πœ• 𝑦
π‘Ž1
𝑠
the partial derivative
π‘₯
π‘Ž1
𝑦
1
π‘š
𝑠=1
π‘š
(𝑦 𝑠 βˆ’ 𝑦 𝑠)π‘Ž1
𝑠
πœ•π½(πœƒ2)
πœ•πœƒ2
the partial derivative
π‘₯
π‘Ž1
𝛿2 π‘Ž1
𝛿2
πœ•π½(πœƒ2)
πœ•πœƒ2
the partial derivative
π‘₯
𝛿1
πœ•π½(πœƒ)
πœ•πœƒ1
𝛿1 π‘₯
𝛿2
the partial derivative
π‘₯
𝛿1
𝛿2
πœ•π½(πœƒ1)
πœ•π‘Ž1
πœ•π‘Ž1
πœ•π‘§1
πœ•z1
πœ•πœƒ1
πœ•π½(πœƒ1)
πœ•πœƒ1
the partial derivative
π‘₯
𝛿1
𝛿2
πœƒ2 𝛿2
πœ•π‘Ž1
πœ•π‘§1
πœ•z1
πœ•πœƒ1
πœ•π½(πœƒ1)
πœ•πœƒ1
the partial derivative
π‘₯
𝛿1
πœ•π½(πœƒ1)
πœ•πœƒ1
𝛿2
πœƒ2 𝛿2 π‘Ž1(1 βˆ’ π‘Ž1)
πœ•z1
πœ•πœƒ1
the partial derivative
π‘₯
𝛿1
πœ•π½(πœƒ1)
πœ•πœƒ1
𝛿2
πœƒ2 𝛿2 π‘Ž1(1 βˆ’ π‘Ž1) π‘₯
the partial derivative
π‘₯
𝛿1
πœ•π½(πœƒ1)
πœ•πœƒ1
𝛿2
πœƒ2 𝛿2 π‘Ž1(1 βˆ’ π‘Ž1) π‘₯
𝛿1
the partial derivative
π‘₯
𝛿1
πœ•π½(πœƒ1)
πœ•πœƒ1
𝛿1 π‘₯
𝛿2
Connection
Weights
Class
Input
Features
Class
Connection
Weights
Class
Input
Features
Learned
Features
Learning deep architectures for AI
https://deeplearning.net
https://github.com/jimod/deeplearning-
meetup-dublin
http://colah.github.io/
https://www.coursera.org/learn/machine-
learning
https://www.coursera.org/course/neuralnets
Dl meetup 07-04-16

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