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I'm very new to c++ classes, so this is probably a really obvious question, but because I'm not familiar with the lingo yet I cant seem to be able to get a correct search term.

Anyway, what I am trying to do is have a public function in a class access a private function in same class.

eg

//.h file:

class foo {

float useful(float, float);

public:

int bar(float);

};

//.cpp file:

int foo::useful(float a, float b){
//does something and returns an int
}

int foo::bar(float a){
//how do I access the 'useful' function in foo?? eg something like
return useful(a, 0.8); //but this doesnt compile
}
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You can use this->useful(a, 0.8); as well. But you need to correct the type of your function declaration first. –  darvids0n Apr 8 '11 at 1:29
    
GAHH so sorry to waste anyone's time; I simply had a typo. The error it gave me was 'function not declared in this scope' so I thought I had a syntax error. newbie fail –  Zak Henry Apr 8 '11 at 1:30
1  
everyone hits these kinds of problems. Its more embarrassing when you start getting better and find yourself get tripped up by something like this ;) –  Stargazer712 Apr 8 '11 at 1:32

3 Answers 3

up vote 1 down vote accepted

Your return types don't match:

//.h file:

class foo {

float useful(float, float);      // <--- THIS ONE IS FLOAT ....

public:

int bar(float);

};

//.cpp file:

int foo::useful(float a, float b){       // <-- ...THIS ONE IS INT. WHICH ONE?
//does something and returns an int
}

int foo::bar(float a){
//how do I access the 'useful' function in foo?? eg something like
return useful(a, 0.8); //but this doesnt compile
}

The compiler looks for a function definition that matches exactly. The compiler error that you are getting is probably complaining about the fact that it a) can't find float useful(), or b) doesn't know what you mean when you're talking about int useful.

Make sure those match, and calling useful within bar should work just fine.

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Ill accept your answer because it is a good answer because it highlights another error –  Zak Henry Apr 8 '11 at 1:34

The function useful is declared to return a float, but you define it as returning an int.

Contrast

float useful(float, float);

vs

int foo::useful(float a, float b){
    //does something and returns an int
}

If you change the declaration to int useful(float, float) and return something from the function it will work fine.

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Oh oops, thats just a demo I threw together to explain what I am after –  Zak Henry Apr 8 '11 at 1:28

Since you haven't posted the error message your compiler gives you, I'll take a guess. The return types of useful() don't match in the .h and .cpp files. If you make them match (both int or both float) everything should work as you expect.

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