I've been reading some things on neural networks and I understand the general principle of a single layer neural network. I understand the need for aditional layers, but why are nonlinear activation functions used?

This question is followed by this one: What is a derivative of the activation function used for in backpropagation?

up vote 127 down vote accepted

The purpose of the activation function is to introduce non-linearity into the network

in turn, this allows you to model a response variable (aka target variable, class label, or score) that varies non-linearly with its explanatory variables

non-linear means that the output cannot be reproduced from a linear combination of the inputs (which is not the same as output that renders to a straight line--the word for this is affine).

another way to think of it: without a non-linear activation function in the network, a NN, no matter how many layers it had, would behave just like a single-layer perceptron, because summing these layers would give you just another linear function (see definition just above).

>>> in_vec = NP.random.rand(10)
>>> in_vec
  array([ 0.94,  0.61,  0.65,  0.  ,  0.77,  0.99,  0.35,  0.81,  0.46,  0.59])

>>> # common activation function, hyperbolic tangent
>>> out_vec = NP.tanh(in_vec)
>>> out_vec
 array([ 0.74,  0.54,  0.57,  0.  ,  0.65,  0.76,  0.34,  0.67,  0.43,  0.53])

A common activation function used in backprop (hyperbolic tangent) evaluated from -2 to 2:

enter image description here

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    Why would we want to eliminate linearity? – corazza Mar 20 '12 at 10:02
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    If the data we wish to model is non-linear then we need to account for that in our model. – doug Mar 20 '12 at 10:10
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    One sentence answer: <<no matter how many layers would behave just like a single perceptron (because linear functions added together just give you a linear function).>>. Nice! – Parag S. Chandakkar May 23 '15 at 0:57
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    This is a little misleading - as eski mentioned, rectified linear activation functions are extremely successful, and if our goal is just to model/approximate functions, eliminating non-linearity at all steps isn't necessarily the right answer. With enough linear pieces, you can approximate almost any non-linear function to a high degree of accuracy. I found this a good explanation of why rectified linear units work: stats.stackexchange.com/questions/141960/… – tegan Aug 3 '15 at 15:20
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    @tegan Rectified linear activation functions are non-linear. I'm not sure what your comment has to do with the answer. – endolith Aug 6 at 16:11

A linear activation function can be used, however on very limited occasions. In fact to understand activation functions better it is important to look at the ordinary least-square or simply the linear regression. A linear regression aims at finding the optimal weights that result in minimal vertical effect between the explanatory and target variables, when combined with the input. In short, if the expected output reflects the linear regression as shown below then linear activation functions can be used: (Top Figure). But as in the second figure below linear function will not produce the desired results:(Middle figure). However, a non-linear function as shown below would produce the desired results:(Bottom figure) enter image description here

Activation functions cannot be linear because neural networks with a linear activation function are effective only one layer deep, regardless of how complex their architecture is. Input to networks is usually linear transformation (input * weight), but real world and problems are non-linear. To make the incoming data nonlinear, we use nonlinear mapping called activation function. An activation function is a decision making function that determines the presence of a particular neural feature. It is mapped between 0 and 1, where zero means absence of the feature, while one means its presence. Unfortunately, the small changes occurring in the weights cannot be reflected in the activation values because it can only take either 0 or 1. Therefore, nonlinear functions must be continuous and differentiable between this range. A neural network must be able to take any input from -infinity to +infinite, but it should be able to map it to an output that ranges between {0,1} or between {-1,1} in some cases - thus the need for activation function. Non-linearity is needed in activation functions because its aim in a neural network is to produce a nonlinear decision boundary via non-linear combinations of the weight and inputs.

  • +One, Then it can be deduced that nonlinear function is used to establish a perfect boundary? – SIslam Apr 16 '16 at 17:07
  • Yes, exactly. In steady of just producing 0 or 1 it can produce 0.4 or 0.78, making it continuous over the range of boundary. – chibole Apr 18 '16 at 7:18
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    A neural network must be able to take any input from -infinity to +infinite, but it should be able to map it to an output that ranges between {0,1} or between {-1,1}...it reminds me that ReLU limitation is that it should only be used within Hidden layers of a Neural Network Model. – Cloud Cho Feb 16 at 6:10

If we only allow linear activation functions in a neural network, the output will just be a linear transformation of the input, which is not enough to form a universal function approximator. Such a network can just be represented as a matrix multiplication, and you would not be able to obtain very interesting behaviors from such a network.

The same thing goes for the case where all neurons have affine activation functions (i.e. an activation function on the form f(x) = a*x + c, where a and c are constants, which is a generalization of linear activation functions), which will just result in an affine transformation from input to output, which is not very exciting either.

A neural network may very well contain neurons with linear activation functions, such as in the output layer, but these require the company of neurons with a non-linear activation function in other parts of the network.

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    Higher order functions can be approximated with linear activation functions using multiple hidden layers. The universal approximation theorem is specific to MLPs with only one hidden layer. – eski Jan 15 '16 at 18:01
  • Actually, I believe you are correct in your statement about affine activation functions resulting in an affine transformation, but the fact that the transformation is learned through backpropagation (or any other means) makes it not entirely useless as far as the original question is concerned. – eski Jan 15 '16 at 19:06
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    @eski No, you can not approximate higher order functions with only linear activation functions, you can only model linear (or affine, if you have an additional constant node in each but the last layer) functions and transformations, no matter how many layers you have. – HelloGoodbye Jan 17 '16 at 11:08
  • Is it correct to say that the activation function's main purpose is to allow the neural network to produce a non-linear decision boundary? – stackoverflowuser2010 Aug 4 '16 at 5:17
  • @stackoverflowuser2010 That would be one way to look at it. But there are more to an activation function than so. Wikipedia's article about activation functions lists several activation functions, all (but one) of which are nonlinear, and compares different qualities that an activation function can have. – HelloGoodbye Aug 4 '16 at 15:40

"The present paper makes use of the Stone-Weierstrass Theorem and the cosine squasher of Gallant and White to establish that standard multilayer feedforward network architectures using abritrary squashing functions can approximate virtually any function of interest to any desired degree of accuracy, provided sufficently many hidden units are available." (Hornik et al., 1989, Neural Networks)

A squashing function is for example a nonlinear activation function that maps to [0,1] like the sigmoid activation function.

There are times when a purely linear network can give useful results. Say we have a network of three layers with shapes (3,2,3). By limiting the middle layer to only two dimensions, we get a result that is the "plane of best fit" in the original three dimensional space.

But there are easier ways to find linear transformations of this form, such as NMF, PCA etc. However, this is a case where a multi-layered network does NOT behave the same way as a single layer perceptron.

As I remember - sigmoid functions are used because their derivative that fits in BP algorithm is easy to calculate, something simple like f(x)(1-f(x)). I don't remember exactly the math. Actually any function with derivatives can be used.

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    The function still wants to be monotonically increasing, as I recall. So, not any function. – Novak Mar 20 '12 at 19:01
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    Yes, you're right; Didn't remembered exactly – Anton Mar 21 '12 at 8:15

A layered NN of several neurons can be used to learn linearly inseparable problems. For example XOR function can be obtained with two layers with step activation function.

It's not at all a requirement. In fact, the rectified linear activation function is very useful in large neural networks. Computing the gradient is much faster, and it induces sparsity by setting a minimum bound at 0.

See the following for more details: https://www.academia.edu/7826776/Mathematical_Intuition_for_Performance_of_Rectified_Linear_Unit_in_Deep_Neural_Networks


Edit:

There has been some discussion over whether the rectified linear activation function can be called a linear function.

Yes, it is technically a nonlinear function because it is not linear at the point x=0, however, it is still correct to say that it is linear at all other points, so I don't think it's that useful to nitpick here,

I could have chosen the identity function and it would still be true, but I chose ReLU as an example because of its recent popularity.

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    The rectified linear activation function is also non-linear (despite its name). It is just linear for positive values – Plankalkül Aug 21 '15 at 9:08
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    You're technically correct, it's not linear across the entire domain, specifically at x=0 (it is linear for x < 0 actually, since f(x) = 0 is a linear function). It's also not differentiable so the gradient function isn't fully computable either, but in practice these technicalities are easy to overcome. – eski Aug 21 '15 at 17:00
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    He's not only technically correct, he's also right in practice (or something like that). It is the non-linearity of the ReLU that make them useful. If they would have been linear, they would have had an activation function on the form f(x) = a*x (because that is the only type of linear activation function there is), which is useless as an activation function (unless you combine it with non-linear activation functions). – HelloGoodbye Jan 15 '16 at 17:11
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    What do you mean by "complex functions and patterns"? If you only have linear activation functions, the entire network can only model linear transformations between input and output. And since you can model any linear transformation you want with only a direct connection between input and output layers, your entire network will not become any better than a network with no hidden layers in it, no matter how many hidden layers you use. – HelloGoodbye Jan 16 '16 at 3:25
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    Rectified Linear Unit (ReLU) is not linear, and it's not just a "minor detail" that people are nitpicking, it's a significant important reason of why it is useful to begin with. A neural network with the identity matrix or a regular linear unit used as the activation function would not be able to model non linear functions. Just because it's linear above 0 doesn't mean it's practically a linear function. A leaky ReLU is "linear" below 0 as well but it's still not a linear function and definitely can't just be replaced by the identity function. Nonlinearity is most definitely a requirement. – Essam Al-Mansouri Mar 3 '16 at 7:02

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