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I'm trying

void function(int y,int w)
{
    printf("int function");

}


void function(float y,float w)
{
    printf("float function");
}


int main()
{
    function(1.2,2.2);
    return 0;
}

I get an error error like..

error C2668: 'function' : ambiguous call to overloaded function

and when I try to call function(1.2,2) or function(1,2.2) it is printing as "int function"

Please clarify when will the function(float y,float w) be called?

share|improve this question
39  
You are passing doubles to the function, and none of the overloads is better. Try passing floats, e.g. 1.2f. –  juanchopanza May 17 '13 at 5:44
7  
I see that you've opened a bounty on this question. What exactly is there that L Lawliet's answer doesn't explain or address adequately? Consider editing your question to mention your additional concerns. –  Cody Gray May 31 '13 at 0:42
2  
The question was answered perfectly. What else is there to say? Should Bjarne Stroustrup answer it personally? Ain't gonna happen. –  Nikos C. May 31 '13 at 1:08
3  
Maybe he just want another or improve answer with another explanation that is more easy compared to L Lawliet's answer..! It is possible.. –  SyntaxError May 31 '13 at 1:18
2  
@nightStalkEr If you have any idea on how to make L Lawliet's answer any clearer, please don't keep them to yourself. Its about as clear as I could make it! –  Cody Gray May 31 '13 at 5:21

10 Answers 10

up vote 68 down vote accepted
+150

Look at the error message from gcc:

a.cpp:16: error: call of overloaded ‘function(double, double)’ is ambiguous
a.cpp:3: note: candidates are: void function(int, int)
a.cpp:9: note:                 void function(float, float)

A call to either function would require truncation, which is why neither is preferred over the other. I suspect you really want void function(double y,double w). Remember that in C/C++, the default floating-point type for literals and parameter passing is double, NOT float.

UPDATE

If you really don't want to change the function signature from float to double, you can always use literals that are typed as float. If you add the suffix f to the floating point numbers, they will be typed float.

Your examples would then be function(1.2f, 2f) and function(1, 2.2f).

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3  
I am giving my bounty to l lawliet since no other answers below gives me a clear slolution like this. –  james raygan Jun 7 '13 at 0:00
1  
+1 upvote. Nice answer for you. –  SyntaxError Jul 9 '13 at 0:08

What is operator overloading?

Sbi's famous Operator overloading faq answers this in great detail.

Why are the two function versions in OP allowed to exist?

Notice they take different function parameter types(int and float) and hence qualify as valid function overloads.

What is overload resolution?

It is the process of selecting the most appropriate function/operator by the compiler implementation. If a best viable function exists and is unique, overload resolution succeeds and produces it as the result. Otherwise overload resolution fails and the invocation is treated as ill-formed and compiler provides a diagnostic. The compiler uses implicit conversion sequence to find the best match function.

C++03 Standard 13.3.3.1 Implicit Conversions:

An implicit conversion sequence is a sequence of conversions used to convert an argument in a function call to the type of the corresponding parameter of the function being called.

The implicit conversion sequences can be one of the following categories:

  • A standard conversion sequence(13.3.3.1.1)
  • A user-defined conversion sequence(13.3.3.1.2)
  • An ellipsis conversion sequence(13.3.3.1.3)

Note that each of these are ranked to determine the best viable function. The best viable function is the one all whose parameters have either better or equal-ranked implicit conversion sequences than all of the other viable functions.The standard details each of these in detail in respective sections. The standard conversion sequence is relevant to this case, it is summarized as:

enter image description here

With enough background on overloading resolution.
let us examine the code examples in OP:

function(1.2,2.2);

Important Rule: 1.2 and 2.2 are literals and they are treated as a double data type.

During implicit conversion sequences mapping:
Both the function parameter literals with double type need a conversion rank to either call the float or int version and none is a better match than other, they score exactly the same on conversion rank. The compiler is unable to detect the best viable match and it reports an ambiguity.

function(1.2,2);

During implicit conversion sequence mapping:
One of the function parameters 2 has an exact match with the int function version while another 1.2 has a conversion rank. For function which takes float as parameters the implicit conversion sequences for both parameters are of conversion rank.
So the function which takes int version scores better than the float version and is the best match and gets called.

How to resolve overloading ambiguity errors?

If you don't want the implicit conversion sequence mapping to throw you off, just provide functions and call them in such a way so that the parameters are a exact match. Since exact match scores over all others, You have a definite guarantee of your desired function getting called. In your case there are two ways to do this:

Solution 1:

Call the function so that parameters are exact match to the functions available.

function(1.2f,2.2f);

Since 1.2f and 2.2f are treated as float types they match exactly to the float function version.

Solution 2:

Provide a function overload which exactly matches the parameter type in called function.

function(double, double){}

Since 1.2 and 2.2 are treated as double the called function is exact match to this overload.

share|improve this answer

If you don't want to (as explained in the accepted answer):

  • use float literals, e.g. 1.2f
  • or change the existing float overload to double

You can add another overload that calls the float one:

void function(double y, double w)
{
    function((float)y, (float)w);
}

Your code in main now will call the above function, which will call the float overload.

share|improve this answer

Function overloading in the above example has ambiguous calls because the return type are same and the 2nd argument in the call of function is double, which can be treated as int or float and hence the compiler confuses to which function to execute.

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5  
The return type has nothing to do with it. –  Jonathan Wakely Jun 4 '13 at 12:09

I hope this help This code is self explaintary for all combination

You need to send two float to call a float function

#include<iostream>
#include<stdio.h>

using namespace std;

//when arguments are both int
void function(int y,int w) {
    printf("int function\n");
}

//when arguments are both double
void function(double y, double w) {
    printf("double function\n");
}

//when arguments are both float
void function(float y, float w) {
    printf("float function\n");
}

//when arguments are int and float
void function(int y, float x) {
    printf("int float function\n");
}

//when arguments are float and int
void function(float y,int w) {
    printf("float int function\n");
}

//when arguments are int and double
void function(int y, double w) {
    printf("int double function\n");
}

//when arguments are double and int
void function(double y, int x) {
    printf("double int function\n");
}

//when arguments are double and float
void function(double y, float x) {
    printf("double float function\n");
}

//when arguments are float and double
void function(float y, double x) {
    printf("float double function\n");
}



int main(int argc, char *argv[]) {
    function(1.2,2.2);
    function(1.2f,2.2f);
    function(1,2);
    function(1.2,2.2f);
    function(1.2f,2.2);
    function(1,2.2);
    function(1,2.2f);
    function(1.2,2);
    function(1.2f,2);
    return 0;
}
share|improve this answer
1  
This is probably the most verbose demonstration of function overloading that I've ever seen... –  Cody Gray Jun 4 '13 at 14:28
    
I have answered this way so that all confusion are cleared for this particular type –  learner Jun 4 '13 at 16:05

When sending a primitive type to a function as argument, if the primitive type you are sending is not exactly the same as it requests, you should always cast it to the requested primitive type.

int main()
{
    function(1.3f,                    2.4f);
    function(1.3f,                    static_cast<float>(2.4));
    function(static_cast<float>(1.3), static_cast<float>(2.4));
    function(static_cast<float>(1),   static_cast<float>(2));
    return 0;
}
share|improve this answer
    
This statement is simply untrue. The language has widening rules that apply in almost all situations. They don't apply in this one, and that is the problem. -1 –  EJP Jun 10 '13 at 10:26

By default decimal is considered as double. If you want decimal to be floats you suffix it with f. In your example when you call function(1.2,2.2) the compiler considers the values you have passed it as double and hence you are getting mismatch in function signature.

function(1.2,1.2) ====> function(double,double)

If you want to retain the function signature you need to use floating point suffix while passing floating point literal.

function(1.2f,1.2f) ====>   function(float,float).

If you are more interested in knowing about floating point literals you can refer

Why floating point value such as 3.14 are considered as double by default in MSVC?

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Like others have said, you give doubles to your overloaded function which is designed for floats. The overloading itself doesn't have any errors.

Here's the correct use of the overloaded function (notice the 'f'´s right after the numbers):

function(1.0f, 2.0f);
share|improve this answer
function(1.2,2.2);

Those numbers aren't floats, they are doubles. So this code says:

double p1 = 1.2;
double p2 = 2.2;
void (*fn)(double /*decltype(p1)*/, double /*decltype(p2)*/) = function;

The compiler is now looking a "function" which takes two doubles. There is no exact match. So next it looks for a function which takes an argument that can be cast from doubles. There are two matches.

function(int, int);
function(float, float);

You have several options.

  1. Add an exact match overload.

    void function(double, double) { printf("double function\n"); }

  2. Use casting.

    function(static_cast(1.2), static_cast(2.2));

  3. Call "function" with floats instead of doubles:

    function(1.2f, 2.2f);

share|improve this answer

Just imagine how your arguments would be passed.

If it is passed as 1.2 and 2.2 to the (int,int) function then it would to truncated to 1 and 2.

If it is passed as 1.2 and 2.2 to the (float,float) it will be processed as is.

So here is where the ambiguity creeps in.

I have found two ways to solve this problem. First is the use of literals:-

int main()
{
        function(1.2F,2.2F);
    return 0;
}

Secondly, and the way I like to do it, It always works (and can also be used for C++'s default conversion and promotion). For int:-

int main()
{
int a=1.2, b=2.2;
    function(a,b);
    return 0;
}

For Float:-

int main()
{
float a=1.2, b=2.2;
    function(a,b);
    return 0;
}

So instead of using actual DIGITS. It is better to declare them as a type first, then overload!

See now, if you send it as (1.2,2) or (1,2.2) then compiler can simply send it to the int function and it would work. However, to send it to the float function the compiler would have to promote 2 to float. Promotion only happens when no match is found.

Refer:- Computer Science with C++ Sumita Arora Chapter: Function Overloading

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3  
If it is passed as 1.2 and 2.2 to the (float,float) it will NOT be processed as is. It will be rounded slightly. (Isn't floating point fun?) –  Mooing Duck May 31 '13 at 22:11
    
And 'here' is not 'where the ambiguity creeps in'. If the arguments were specified as floats there would be no ambiguity. The ambiguity arises because the arguments are doubles, and there is no preferred choice of conversion. -1 –  EJP Jun 10 '13 at 10:25

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