HOW CAN I USE 3 DIFFERENT DATA TO TRAIN NEURAL NETWORK
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I am trying to train a neural network with raw data, normalised data and standardised data.But it shows some errors. I need to do this as one after another resulting 3 different neural networks so I can compare the output with the target.
The code I tried is attached below,
%training neural network using raw data
p=x
p
p = p'
t=t'
mynet = feedforwardnet
view(mynet)
train = train(mynet,p,t)
results = sim(mynet,p)
compare = t==results
%training data using standardised data
p1=xs
p1
p1=p'
t1=t'
mynet1 = feedforwardnet
view(mynet1)
train = mynet1(mynet1,p1,t1)
results1 = sim(mynet1,p)
compare1 = t1==results1
%training data using normaised data
p2=xn
p2
p2=p'
t2=t'
mynet2 = feedforwardnet
view(mynet2)
train2 = mynet2(mynet2,p2,t2)
results2 = sim(mynet2,p2)
compare2 = t2==results2
and the error message I hae recieved
>> train = mynet1(mynet1,p1,t1)
Error using network/sim (line 248)
Inputs is not a matrix or cell array.
3 Comments
Srivardhan Gadila
on 15 Apr 2021
@JIBIN GEORGE, can you provide the exact information of the other errors you are getting apart from the ones mentioned in the question.
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