C++ Neural Networks and Fuzzy Logic: Preface


C++ Neural Networks and Fuzzy Logic



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C neural networks and fuzzy logic

C++ Neural Networks and Fuzzy Logic

by Valluru B. Rao

MTBooks, IDG Books Worldwide, Inc.



ISBN: 1558515526   Pub Date: 06/01/95

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XOR Function and the Perceptron

The ability of a Perceptron in evaluating functions was brought into question when Minsky and Papert proved

that a simple function like XOR (the logical function exclusive or) could not be correctly evaluated by a

Perceptron. The XOR logical function, f(A,B), is as follows:



A

B

f(A,B)= XOR(A,B)

0

0



0

0

1



1

1

0



1

1

1



0

To summarize the behavior of the XOR, if both inputs are the same value, the output is 0, otherwise the output

is 1.

Minsky and Papert showed that it is impossible to come up with the proper set of weights for the neurons in



the single layer of a simple Perceptron to evaluate the XOR function. The reason for this is that such a

Perceptron, one with a single layer of neurons, requires the function to be evaluated, to be linearly separable

by means of the function values. The concept of linear separability is explained next. But let us show you first

why the simple perceptron fails to compute this function.

Since there are two arguments for the XOR function, there would be two neurons in the input layer, and since

the function’s value is one number, there would be one output neuron. Therefore, you need two weights w



1

and w



2

 ,and a threshold value ¸. Let us now look at the conditions to be satisfied by the w’s and the ¸ so that

the outputs corresponding to given inputs would be as for the XOR function.

First the output should be 0 if inputs are 0 and 0. The activation works out as 0. To get an output of 0, you

need 0 < ¸. This is your first condition. Table 5.1 shows this and two other conditions you need, and why.

Table 5.1 Conditions on Weights


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