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I am trying to write an operator != function that compares if two complex numbers are the same. I Have written an equal to == function which works well but I am trying to use the negation of the result.

bool ComplexNumber::operator !=(ComplexNumber a) {
    return !(this==(a));  //the == has been overloaded
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So... what's the question? – shift66 Feb 27 '12 at 12:18
Unless this is homework (in which case a tag is missing), you can use std::complex. – ereOn Feb 27 '12 at 12:24

3 Answers 3

up vote 6 down vote accepted

return !(this==(a)); is comparing a ComplexNumber* to a ComplexNumber. Change to:

bool ComplexNumber::operator !=(const ComplexNumber& a) const {
    return !(*this == a);  //the == has been overloaded

Also added const qualifier to function and argument (which I changed to to a reference to avoid unnecessary copy). You will need to add const qualifier to bool ComplexNumber::operator ==() if it is not already present.

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Please rewrite your post as a question.

I guess the question is: Why doesn't this work. The problem you have is that this is a pointer to an object, while a is an object.

bool ComplexNumber::operator !=(ComplexNumber a){
    return !(*this==(a));  //the == has been overloaded

will solve your problem.

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bool ComplexNumber::operator !=(const ComplexNumber &a) const {
    return !operator==(a);
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And what if operator==() was implemented as a free function ? – ereOn Feb 27 '12 at 12:26
I'd also implement != as free then. – foxx1337 Feb 27 '12 at 12:26
Using the *this == a form works in both situations and gives and similar result. – ereOn Feb 27 '12 at 12:28

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