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I have written a piece of code that uses complex library. I have put the definition of my function in a header file and in the main.cpp i have defined the complex number "I" as you can see in my codes below. But when i want to compile this code i receive errors.

I think the function in the header file can not use complex library. How can i fix this problem?

Thanks.

main.cpp

#include <iostream>
#include "math.h"
#include <complex>
#include "header.h"

using namespace std;
typedef complex<double> cmp;
cmp I(0.0,1.0);

int main()
{
cout << function(5.0) << endl;

return 0;
}

header.h

#ifndef header
#define header

double function(double x)
{
return 5*exp(I*x).real();
}

#endif
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1  
when you say you receive errors, you should also say what errors they are. –  asgs Aug 30 '12 at 4:10
    
You wrote I have written a piece of code that uses complex.h header file But your code does not show #include "complex.h" or #include <complex.h>. Am I right you have compilation errors? –  Grzegorz Aug 30 '12 at 4:16
    
I made a mistake i should have written complex library –  yashar Aug 30 '12 at 4:42

4 Answers 4

up vote 3 down vote accepted

The problem is that I is not defined when your header file is parsed. You would need to move the definition of I before the #include "header.h".

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Better to just include it in the header file where it is needed. –  Ed S. Aug 30 '12 at 4:17
    
@EdS.: Wrong header your thinking of. –  Linuxios Aug 30 '12 at 4:19
    
@EdS. - good point, though if any other code has to include this header we'd have to try something else. Maybe something like extern cmp I; would be the best plan. –  Rob I Aug 30 '12 at 4:20

Because I is defined after the header include, your main.cpp essentially becomes this:

double function(double x)
{
    return 5*exp(I*x).real();
}

using namespace std;
typedef complex<double> cmp;
cmp I(0.0,1.0);

The compiler parses your function, and throws an error because it doesn't know what I is (yet).

You should include any constants that functions rely upon before the function, like this in your header file:

#ifndef header
#define header

#include <complex>

typedef complex<double> cmp;
cmp I(0.0,1.0);

double function(double x)
{
    return 5*exp(I*x).real();
}

#endif
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Thank you. Did it work for you.I couldn't compile it. –  yashar Aug 30 '12 at 5:05
    
I added #include <iostream> and "using namespace std;" before typedef in header file then your code worked. –  yashar Aug 30 '12 at 6:08

Change your header.h to contain this:

double function( std::complex<double> I, double x)

Change your main.cpp so it contains this:

cout << function(I, 5.0) << endl ;

You problem was because in your header.h you used variable I which was not visible.

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Thank you. It worked for me, but what about the situation in which the type of the function should be complex instead of double. –  yashar Aug 30 '12 at 5:07
    
Are you asking about the second parameter or result? Anyway, it can be like that: std::complex<double> function( std::complex<double> I, std::complex<double> x) –  Grzegorz Aug 30 '12 at 14:31

You should include the library header file in your header(header.h) which uses the library symbols.

#include <complex> 

It is always better to include all the dependencies of an file within itself rather than depending on them to be included otherwise. Maybe your header.h gets included somewhere the library symbol name dependency does not get resolved indirectly through other includes.

EDIT:

On a side note I am not sure why you included the definition of the function in the header file itself. You should, change the header to only have the declaration:

header.h

#ifndef header
#define header

#include <complex> 

typedef std::complex<double> cmp;
extern cmp I;

double function(double x);

#endif 

Add another source file which defines the function

header.cpp

#include "header.h"    


double function(double x)
{
    return 5*exp(I*x).real();
}

main.cpp

#include <iostream>
#include "math.h"
#include <complex>
#include "header.h"

using namespace std;
cmp I(0.0,1.0);

int main()
{
   cout << function(5.0) << endl;

return 0;
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He does. This is not an answer. –  Linuxios Aug 30 '12 at 4:15
    
@Linuxios: If he does, I don't see where he does so and I don't know how you know he does. –  Alok Save Aug 30 '12 at 4:16
    
@Linuxios: No, he doesn't, read more carefully. He has a function definition in his header. This is the best answer. –  Ed S. Aug 30 '12 at 4:18
    
@EdS.: And he includes <complex> in his .cpp file. This is NOT his problem. –  Linuxios Aug 30 '12 at 4:19
    
@Als: I is not a library symbol, but his own symbol. –  Linuxios Aug 30 '12 at 4:20

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