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Hands-On Meta Learning with Python
book

Hands-On Meta Learning with Python

by Sudharsan Ravichandiran
December 2018
Beginner to intermediate
226 pages
7h 59m
English
Packt Publishing
Content preview from Hands-On Meta Learning with Python

FGSM

Now, we define one more function called FGSM for generating adversarial inputs. We use FGSM for generating adversarial samples. We have seen how FGSM generates the adversarial pairs by calculating gradients with respect to the input instead of the model parameter. So, we take clean (x, y) pairs as input and generate adversarial (x_adv, y) pairs:

def FGSM(x,y):    #placeholder for the inputs x and y    X = tf.placeholder(tf.float32)    Y = tf.placeholder(tf.float32)    #initialize theta with random values    theta = tf.Variable(tf.zeros([50,1]))    #predict the value of y    YHat = tf.nn.softmax(tf.matmul(X, theta))     #calculate the loss    loss = tf.reduce_mean(-tf.reduce_sum(Y*tf.log(YHat), reduction_indices=1))  #now calculate gradient of our loss function ...
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Publisher Resources

ISBN: 9781789534207