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Code goes first:

template <typename T>
void do_sth(int count)
{
    char str_count[10];
    //...
    itoa(count, str_count, 10);
    //...
}

but I got some compile-error like this:

error: there are no arguments to ‘itoa’ that depend on a template parameter, so a declaration of ‘itoa’ must be available
error: ‘itoa’ was not declared in this scope

But I indeed included <cstdlib>. Who can tell me what's wrong?

share|improve this question
1  
Have you #included <stdlib.h>? Or, better, <cstdlib> and use this function as std::itoa. – dimitri Sep 18 '11 at 12:23
    
are you trying to do printf, operator << (ostream &, int), boost karma, boost format, lexical_cast etc etc. all over again? – sehe Sep 18 '11 at 12:37
    
@dimitri, I tried both ways, none works. I use stringstream instead. – Alcott Sep 18 '11 at 12:39
up vote 3 down vote accepted

It appears that itoa is a non-standard function and not available on all platforms. Use snprintf instead (or type-safe std::stringstream).

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It is a non-standard function, usually defined in stdlib.h (but it is not gauranteed by ANSI-C, see the note below).

#include<stdlib.h>

then use itoa()

Note that cstdlib doesn't have this function. So including cstdlib wouldn't help.

Also note that this online doc says,

Portability

This function is not defined in ANSI-C and is not part of C++, but is supported by some compilers.

If it's defined in the header, then in C++, if you've to use it as:

extern "C" 
{
    //avoid name-mangling!
    char *  itoa ( int value, char * str, int base );
}

//then use it
char *output = itoa(/*...params*...*/);

A portable solution

You can use sprintf to convert the integer into string as:

sprintf(str,"%d",value);// converts to decimal base.
sprintf(str,"%x",value);// converts to hexadecimal base.
sprintf(str,"%o",value);// converts to octal base.
share|improve this answer
    
no, got another error saying "not a member of std". – Alcott Sep 18 '11 at 12:23
    
@Alcott: Actually, you don't have to use std::. I habitually wrote that :P – Nawaz Sep 18 '11 at 12:25
    
well, so I have to include stdlib.h not cstdlib, right? I thought cstdlib is an equivalent of stdlib.h in C++. – Alcott Sep 18 '11 at 12:26
    
But it seems I still cannot pass the compilation. – Alcott Sep 18 '11 at 12:27
    
@Alcott: that means, you don't have this header. As I said in my answer, it is not gauranteed that you will find it. – Nawaz Sep 18 '11 at 12:30

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