Comparing the number of parameter of RNN and ANN
In this exercise, you will compare the number of parameters of an artificial neural network (ANN) with the recurrent neural network (RNN) architectures. Here, the vocabulary size is equal to 10,000
for both models.
The models have been defined for you with similar architectures of only one layer with 256
units (Dense or RNN) plus the output layer. They are stored on variables ann_model
and rnn_model
.
Use the method .summary()
to print the models' architecture and number of parameters and select the correct statement.
This exercise is part of the course
Recurrent Neural Networks (RNNs) for Language Modeling with Keras
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