Beginning Anomaly Detection Using



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Beginning Anomaly Detection Using Python-Based Deep Learning

Encoding 

Stage

Conv 2


Pool 1

Conv 1


Pool 2

Output of Encoding Stage

Input of Decoding Stage

Decoding 

Stage

Output


Conv 1

Upsample 2

Conv 2

Upsample 1



Softmax

Figure 7-46.  In both the encoding and decoding stages, the model is comprised of 

causal convolutional layers and is structured so that the layers are always causal

Chapter 7   temporal Convolutional networks




285

The decoding stage is a bit different in this case, since you make use of what is called 



upsampling. Upsampling is a technique in which you repeat the data n number of times 

to scale it up by a factor 



n. In the max pooling layers, the data is reduced by a factor of 

two. So, to upsample and increase the data by the same factor of two, you repeat the 

data twice. In this case, you are using one-dimensional upsampling, so the layer repeats 

each step 



n times with respect to the axis of time. To get a better understanding of what 

upsampling does, let’s apply one-dimensional upsampling to Figure 

7-47

 and Figure 



7- 48

.

Keeping in mind that each individual temporal step is repeated twice, you would see 



something like Figure 

7-49


, Figure 

7-50


, and Figure 

7-51


.

4   2   6   7   1   6   9





Figure 7-47.  A vector x defined with the corresponding values

n = 2


So data increases by factor of 2 /

repeat each step two mes




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