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I have a project which uses gcc version 4.6.3, and I'm forced to compile with "-Wall -Werror -Wconversion". The following simple example shows an error I can't get rid of:

#include <stdint.h>

int main(void) {
  uint32_t u = 0;
  char c = 1;

  u += c;
  return (int)u;
}

Compiling it with the above flags gives:

test.c:7:8: error: conversion to ‘uint32_t’ from ‘char’ may change the sign of the result [-Werror=sign-conversion]

Ok, fine. Just add a typecast, right? Nope. Changing line 7 to u += (uint32_t)c does not make the error go away. Even changing it to u = u + (uint32_t)c does not make it go away.

Is it possible to fix this?

Please note that the "char" is coming from a string, so I don't have the option to change its type.

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2  
The char is/could be signed (ie could have negative values) while an uint32_t can only have positive values. What would be your desired result if u were 0 and c were -1? –  Joachim Isaksson Oct 19 '12 at 14:28
    
It's ASCII text in the string, so I know they're not negative values. –  brooks94 Oct 19 '12 at 14:30
    
@JoachimIsaksson: There is no guarantee that char is signed or not. It could be either: it's implementation-defined, as per C99 6.2.5p15. –  netcoder Oct 19 '12 at 14:30
    
So make it unsigned char c –  tpg2114 Oct 19 '12 at 14:30
    
You have to consider encoding in the string. What type is the string? Is it UTF-8 or simple null-terminated string? This determines byte-width of single character –  pro_metedor Oct 19 '12 at 14:30

3 Answers 3

up vote 2 down vote accepted

This compiles fine here:

u += (unsigned char)c;

This will only silence the warning, however — without doing anything to each c at run-time, unlike Basile's proposal.

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The issue is with signed (negative) character. You might try

 u += (unsigned) (c&0xff);
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The question is which conversion you want. If you want the conversion defined by the standard, you apparently need to assign c to a (temporary) uint32_t variable.

uint32_t temp = (uint32_t)c;
u += temp;

works as intended (at least with my gcc-4.6.2).

If that is not the intended conversion - but why would you then explicitly ask for it using (uint32_t)c? - the solutions suggested by Basile Starynkevich or Mikhail T., or the -funsigned-char flag would eliminate the warning.

IMO it's a (terrible) bug in gcc, and clang seems to agree, u += (uint32_t)c; works as intended there.

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If you feel it is GCC bug please report it on gcc.gnu.org/bugzilla –  Basile Starynkevitch Oct 19 '12 at 16:41

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