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I have the following code:

const uint8_t HEADER_SIZE = 0x08;
std::vector<uint8_t> a, b;
uint8_t x;

/* populate 'a', 'b'. Set 'x' */

for ( uint8_t i = 0; i < HEADER_SIZE; ++i )
{
    // The if statement (specifically the AND): Conversion to 'unsigned int' from 'int' may change the sign of the result [-Wsign-conversion]
    if ( x != ( a[i + HEADER_SIZE] & b[i] ) )
    {
         /* ... */
         break;
    }
}

I tried casting almost everything, and I cannot seem to figure out why a simple AND is causing this warning. Both variables are unsigned. Any ideas?

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The value of an object of type uint8_t (assuming uint8_t exists, which is not required) will always fit unchanged in an int, so the warning is harmless. –  Pete Becker Oct 1 '12 at 15:32

3 Answers 3

up vote 1 down vote accepted

Your uint8_t's get promoted to int before being &ed together. Then that int is being compared to x, which is still uint8_t. Same thing happens with i + HEADER_SIZE. Casting results back to uint8_t should get rid of the warning.

x != uint8_t(a[uint8_t(i + HEADER_SIZE)] & b[i])
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Both a[i + HEADER_SIZE] and b[i] will be promoted to int as, although they are both unsigned types they are narrower types than int. All narrower integer types are promoted to int (if int can represent all of the values of the type being promoted) or unsigned int for all built in arithmetic operations.

Explicitly converting all operands to an unsigned int should silence the warning:

unsigned int a_dash = a[i + HEADER_+SIZE];
unsigned int b_dash = b[i];
unsigned int x_dash = x;
if (x_dash != (a_dash & b_dash))
{ // ...
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Problem is with the indexing, try:

_a = a[i + HEADER_SIZE];
_b = b[i];
if ( x != (_a & _b) )

You will see the problem is on the _a = ... line. This is because the adding of i and HEADER_SIZE is causing a promotion from uint8_t to int.

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