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I have the following code:

unsigned int x, last_x;
int dx;
[...]
dx = x - last_x;

Compiling this with g++ (4.7.2) and -Wsign-conversion produces the following: warning: conversion to ‘int’ from ‘unsigned int’ may change the sign of the result [-Wsign-conversion]

The only way to make the warning disappear is by changing to:

dx = static_cast<int>(x) - static_cast<int>(last_x);

or

dx = static_cast<int>(x - last_x);

What is the explanation for this behaviour? Is the - operator only defined for signed ints? I would expect to have a - operator that takes unsigned values and returns a signed value.

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I can't reproduce this with gcc 4.8.2, which gcc version did you use ? –  nos Dec 1 '13 at 19:36
    
I am using 4.7.2 –  Dan Nestor Dec 1 '13 at 19:42
    
The first cast (static_cast<int>(x - last_x)) gives no warning (g++ (Ubuntu/Linaro 4.7.2-2ubuntu1) 4.7.2) –  Dieter Lücking Dec 1 '13 at 19:47
    
@DanNestor Then I suppose this is a gcc defect that has been fixed. Can you reproduce it even with this minimal sample: ideone.com/oI8pdD , compile with g++ -c -Wall -Wsign-conversion test.cpp ? –  nos Dec 1 '13 at 19:53
    
Yes, I reproduced this with a minimal sample. Note some edits to the question though. –  Dan Nestor Dec 1 '13 at 19:57

4 Answers 4

up vote 2 down vote accepted

Operations on unsigned ints will result in unsigned ints. Even the subtraction will yield an unsigned int. the value just wraps around: unlike signed integer arithmetic, overflow and underflow for unsigned values results in well define behavior: the arithmetic is simply modulus N where N is one plus the maximum value which can be represented by the unsigned integer.

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So if I understand correctly, the type of x - last_x is unsigned int? Why doesn't static_cast<int>(x - last_x) work, then? –  Dan Nestor Dec 1 '13 at 19:49
    
My mistake, it seems that static_casting the whole expression does indeed work. –  Dan Nestor Dec 1 '13 at 19:54
    
@DanNestor: well, if x < last_x the result is a large unsigned int value which gets changed into a negative value. That is, the result changes its sign and gcc calls attention to that fact. Personally, I don't think it should warn when using static_cast<int>(...) explicitly but that is a decision up to the compiler implementers. –  Dietmar Kühl Dec 1 '13 at 19:55
    
Actually, it does not warn if casting explicitly. It was a mistake I made. Thanks for clarifying that the result will overflow even when assigned to int. –  Dan Nestor Dec 1 '13 at 20:04

The compiler is warning you that the statement you entered, dx = x - last_x;, could result in an unintended sign change. That means when you execute x - last_x, which will be a positive number, when you convert it to a int and store it in dx the value may become negative.

Consider changing unsigned int x, last_x; to int x, last_x;.

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changing to (int)(x - last_x) does not remove the warning. –  Dan Nestor Dec 1 '13 at 19:47
    
Also, dx cannot be changed to unsigned. Consider that x and last_x represent coordinates, and dx is allowed to be negative. –  Dan Nestor Dec 1 '13 at 19:48
    
@DanNestor You're absolutely correct. I modified my answer. –  Fiddling Bits Dec 1 '13 at 19:52
    
I made a mistake though, your cast suggestion actually works. –  Dan Nestor Dec 1 '13 at 19:54
    
@DanNestor It's still a problem though. :-( –  Fiddling Bits Dec 1 '13 at 19:56

Since you are dealing with unsigned integers, you will have to take precautions when subtracting to avoid negative results:

if (x > last_x)
{
  dx = x - last_x;
}
else
{
  dx = last_x - x;
}

As others have stated, a negative result would cause wrap-around.

Edit 1:
If you want dx to be the signed result, you should cast the other values to signed int before subtraction:
dx = (signed int)x - (signed int) last_x;

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The warning is trying to warn you that things can go wrong! Consider:

unsigned int x = UINT_MAX;
unsigned int last_x = 0;

int dx = x - last_x;

Obviously the difference is UINT_MAX, but that doesn't fit in an int, so you get the (presumably undesirable) result of -1.

The only time this will work as intended is if x is part of a circular sequence (eg, a clock rolling over), in which case you should use

int dx = static_cast<int>(x - last_x);

But not

int dx = static_cast<int>(x) - static_cast<int>(last_x);

as that could cause signed integer overflow - undefined behavior

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