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I implemented the tanh function as my activation function, but the result somehow is worse than with a sigmoid activation function. Moreover, while checking the error, it shows that the error goes up down and up again, over and over.

Here are example of error using tanh:

epoch:1823
current error:0.1383121756710299

epoch:1824
current error:0.13831547638188654

epoch:1825
current error:0.13831887880040633

epoch:1826
current error:0.13832238240031222

epoch:1827
current error:0.13832598673034413

epoch:1828
current error:0.1383296914155071

epoch:1829
current error:0.13833349615821078

epoch:1830
current error:0.13833740073931955

epoch:1831
current error:0.1383414050191362

epoch:1832
current error:0.13834550893832906

epoch:1833
current error:0.1383497125188264

epoch:1834
current error:0.13835401586468998

epoch:1835
current error:0.1383584191629793

epoch:1836
current error:0.13836292268462677

epoch:1837
current error:0.1383675267853283

epoch:1838
current error:0.13837223190646183

epoch:1839
current error:0.13837703857605013

epoch:1840
current error:0.138381947409767

epoch:1841
current error:0.1383869591120036

epoch:1842
current error:0.13839207447699467

epoch:1843
current error:0.13839729439001985

epoch:1844
current error:0.1384026198286766

epoch:1845
current error:0.1384080518642369

Meanwhile, sigmoid activation function does not show this. Does anybody have an idea why this is happening?

share|improve this question
    
Can you please show your implementation of tanh? If this is the only difference to the working case, then you may have done something wrong there. – Nabla Jan 26 '14 at 3:52
    
I implemented it using java, here is my formula for tanh activation function: SumNodeWeight=Math.exp(SumNodeWeight*2)-1)/(Math.exp(SumNodeWeight*2)+1); Derivative activation function: partialDerivative=1-(activationValue*activationValue); FYI: when I use this for small dataset the error still decrease but when I use this for big dataset the error decrease and increase – user2826913 Jan 26 '14 at 7:33
    
Is SumNodeWeight= supposed to be activationValue=? – Nabla Jan 26 '14 at 7:37
    
yup, it is activation value well it same as activationValue=Math.exp(SumNodeWeight*2)-1)/(Math.exp(SumNodeWeight*2)+1); – user2826913 Jan 26 '14 at 9:48

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