Question: A model summary is given below for neural network architecture. Model: sequential _ _ _ _ _ _ _ _ _ _ _ _ _

A model summary is given below for neural network architecture.
Model: "sequential"
_________________________________________________________________
Layer (type) Output Shape Param #
=================================================================
dense_1(Dense)(None,64)(blank)
_________________________________________________________________
dense_2(Dense)(None,32)2080
_________________________________________________________________
dense_3(Dense)(None,32)(blank)
_________________________________________________________________
dense_4(Dense)(None,5)(blank)
=================================================================
Total params: (blank)
Trainable params: (blank)
Non-trainable params: 0
_________________________________________________________________
The input data vector has 1000 features. The dense_4 layer is the output layer.
Notice that there are blanks filled in different places. Lets answer a few questions to know each of the values.
Calculate the number of weights in the weight matrix for the first dense hidden layer.
64000
32000
1000
64

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