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Machine Learning
Part 2. Neural networks
Neural networks?
Neuron
Perceptron
Multi-layered
(deep)
Problems with
images
Problems with
images
Too big vectors
(200x200x3 =
120,000)
Pixel position
matters
Convolution
Pooling (sub-
sampling)
CNN
Neural Networks in
Python
pip install keras
open/create ~/.keras/keras.json edit
"image_dim_ordering": “th”;
“backend”: “theano”;
open script from: http://bit.ly/
empatika-keras-1
MNIST
Dogs & Cats
cd <folder that contains ‘data’
subfolder from Google Drive>
open/create ~/.keras/keras.json edit
“backend”: “tensorflow”;
open script from: http://bit.ly/
empatika-keras-2 (initial gist)
Pre-trained models
ResNet50
VGG16
cd <to deep-learning-models
subfolder>
ResNet50
from	resnet50	import	ResNet50	
from	keras.preprocessing	import	image	
from	imagenet_utils	import	preprocess_input,	decode_predictions	
import	numpy	as	np	
model	=	ResNet50(weights='imagenet')	
img_path	=	'elephant.jpg'	
img	=	image.load_img(img_path,	target_size=(224,	224))	
x	=	image.img_to_array(img)	
x	=	np.expand_dims(x,	axis=0)	
x	=	preprocess_input(x)	
preds	=	model.predict(x)	
print('Predicted:',	decode_predictions(preds))

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