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What does this error message mean?

error: call of overloaded ‘setval(int)’ is ambiguous
huge.cpp:18: note: candidates are: void huge::setval(unsigned int)
huge.cpp:28: note:                 void huge::setval(const char*)

My code looks like this:

#include <iostream>
#define BYTES 8
using namespace std ;

class huge {
    unsigned char data[BYTES];
    void setval(unsigned int);
    void setval(const char *);  

void huge::setval(unsigned int t) {
    for(int i = 0; i< BYTES ; i++) {
        data[i] = t;
        t = t >> 1;

void huge::setval(const char *s) {
    for(int i = 0; i< BYTES ; i++)
        data[i] = s[i];

int main() {
    huge p;
    return 0;
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I guess the answer to this question would depend on which version of the function you ARE trying to call. I could assume, but clearly I can't be sure either way unless you tell me. Would that work with the compiler I wonder... – Crazy Eddie Jan 12 '11 at 17:59
All the answers are wrong, as is your compiler. The call is not ambiguous, and this is a compiler bug. – Konrad Rudolph Aug 21 at 16:08

6 Answers 6

up vote 12 down vote accepted

The literal 0 has two meanings in C++.
On the one hand, it is an integer with the value 0.
On the other hand, it is a null-pointer constant.

As your setval function can accept either an int or a char*, the compiler can not decide which overload you meant.

The easiest solution is to just cast the 0 to the right type.
Another option is to ensure the int overload is preferred, for example by making the other one a template:

class huge
  unsigned char data[BYTES];
  void setval(unsigned int);
  template <class T> void setval(const T *); // not implemented
  template <> void setval(const char*);
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For what it's worth, I had to include the specialization outside of the class declaration. Basically include template <> void huge::setval(const char*); just below your class declaration. If I didn't, I received an error about specializing the template in the class scope. Great trick though, this has stumped me before with some of my interfaces. – vmrob Apr 23 '14 at 1:50
0 has only one meaning in C++. It is an integer literal of the type int. If the OP really had an overload taking an int and another taking a char*, the overload resolution would succeed and chose the int overload. However, OP uses unsigned int as the parameter type. And those two conversions, int -> unsigned int vs null pointer constant -> char* are ambiguous. – dyp Apr 4 at 21:42
@dyp: If 0 has only one meaning, how can it be involved in two ambiguous conversions with different starting types? – Bart van Ingen Schenau Apr 5 at 6:58
I don't quite understand what you mean with "starting types". The type of 0 is int. An int can be converted to an unsigned int. A constant expression of type int that evaluates to 0 can also be converted to any pointer type. For example, g++ and clang++ accept 1-1 as a valid null pointer constant (though clang++ only in C++03 mode). That is, 0 is not special, it simply fulfils the conditions to enable those two separate conversions. – dyp Apr 5 at 13:26

The solution is very simple if we consider the type of the constant value, which should be "unsigned int" instead of "int".

Instead of:




The suffix "u" tell the compiler this is a unsigned integer. Then, no conversion would be needed, and the call will be unambiguous.

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Best answer, simple and elegant way to tell the compiler – Bug Killer Jul 13 at 20:02

replace p.setval(0); with the following.

const unsigned int param = 0;

That way it knows for sure which type the constant 0 is.

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That is ambiguous because a pointer is just an address, so an int can also be treated as a pointer -- 0 (an int) can be converted to unsigned int or char * equally easily.

The short answer is to call p.setval() with something that's unambiguously one of the types it's implemented for: unsigned int or char *. p.setval(0U), p.setval((unsigned int)0), and p.setval((char *)0) will all compile.

It's generally a good idea to stay out of this situation in the first place, though, by not defining overloaded functions with such similar types.

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+1 for the last paragraph in particular. – David Thornley Jan 12 '11 at 18:04
Can't wait for C++0x, when we'll finally have the nullptr keyword :) – Mark Loeser Jan 12 '11 at 18:05


p.setval(static_cast<const char *>(0));


p.setval(static_cast<unsigned int>(0));

As indicated by the error, the type of 0 is int. This can just as easily be cast to an unsigned int or a const char *. By making the cast manually, you are telling the compiler which overload you want.

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Cast the value so the compiler knows which function to call:

p.setval(static_cast<const char *>( 0 ));

Note, that you have a segmentation fault in your code after you get it to compile (depending on which function you really wanted to call).

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