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The code is:

*(buf+2) |= (unsigned char)(mFlag & 0x7f);

buf is unsigned char * and mFlag is unsigned char

I guess it is because the return value of operator|= so that I get the warnings

warning: conversion to 'unsigned char' from 'int' may alter its value

How can I remove the warning? Is it due to operator|=?

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Did you try buf[2] |= (unsigned char)(mFlag & 0x7f);? – Rapptz Jul 24 '13 at 3:03
2  
It's probably casting the result of the masking, which is an int. I don't see any particular use in this instance of the warning. – chris Jul 24 '13 at 3:04
    
buf[2] also gives the warning. @Rapptz – thundium Jul 24 '13 at 3:10
    
For the result of masking, I coverted it to unsigned char, why it still hold an int value? And I did use the static_cast<unsigned char> as well ,not work either @chris. Thanks for your help – thundium Jul 24 '13 at 3:10
    
Well, I don't get any warnings with -Wall and -pedantic. Link – Rapptz Jul 24 '13 at 3:14
up vote 4 down vote accepted

In C all arithmetic (including &) is done in types at least as wide as int. So the result of your expression will always be int or unsigned depending on the type of your constant.

Since the constant 0x7f is obviously within bounds for any of the character types the warning your compiler gives is in effect not really helpful, I would even consider it a bug.

The only thing that you can do about this is

*(buf+2) = (unsigned)*(buf+2) | 0x7FU; 

That is to convert the value explicitly to the wider type. If this still gives you a warning for the assignenent use

*(buf+2) = (unsigned char)((unsigned)*(buf+2) | 0x7FU);

but then you should definitively think of upgrading your compiler or change the warning options that you use.

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Huh, I didn't realize that the integer promotion was forced for all arithmetic operands. But there it is in 6.3.1.1 just before paragraph 3. – jxh Jul 26 '13 at 5:01

Should be able to get rid if the warning by declaring the constant as unsigned

*(buf+2) |= (mFlag & 0x7fu);
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warning: conversion to ‘unsigned char’ from ‘unsigned int’ may alter its value [-Wconversion] – Alter Mann Jul 24 '13 at 3:40
    
No the conversion in question is the one on the left side of |=. – Jens Gustedt Jul 24 '13 at 6:13

To remove the warning, you apparently need a temporary variable to hold the 0x7f value.

unsigned char x = 0x7f;
*(buf+2) |= mFlag & x;

The problem seems to be that the compiler is treating any attempt to convert the literal to an unsigned char via a cast results in the warning (further discussion indicates this is specific to the |= operator, simple assignment does not seem to have a problem). However, initialization of a variable is allowed without warning.

Another workaround is to define an inline function to serve the same purpose as the cast. I made this function look similar to a C++ static_cast<>:

template <typename T>
inline T static_conversion (T x) { return x; }
//...
*(buf+2) |= mFlag & static_conversion<unsigned char>(0x7f);

A C version (which also works for C++) would use a different inline function, since C doesn't have templates:

inline unsigned char to_unsigned_char (unsigned char x) { return x; }
/* ... */
*(buf+2) |= mFlag & to_unsigned_char(0x7f);
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That's not the problem, the result of (mFlag & 127u) is still an int – Alter Mann Jul 24 '13 at 3:19
    
@DavidRF: It's not supposed to be. – jxh Jul 24 '13 at 3:33
    
Isn't it quite redundant expecially you have lots of masking work? – thundium Jul 24 '13 at 3:41
    
@user2612857: The inline function makes it less redundant, and about equivalent work as adding a cast. – jxh Jul 24 '13 at 3:41
    
Then I would prefer *(buf+2) = static_cast<unsigned char>(*(buf+2) | (mFlag & 0x7f)); – thundium Jul 24 '13 at 3:42

As @chris says, it's probably casting the result of the masking (and you get a warning when -Wconversion flag is on)

I would use *(buf+2) = (unsigned char)((mFlag & 0x7f) | *(buf+2)); but if you insist on using |= you can take advantage of compound literals (only for C99):

*(buf+2) |= (unsigned char){mFlag & 0x7f};
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No this wouldn't help, both operands are converted to int before the | operation. – Jens Gustedt Jul 24 '13 at 6:12
    
@JensGustedt, have you tried running on C99? works for me without warning – Alter Mann Jul 24 '13 at 6:15
    
This is not a question of C99 or not but of a buggy compiler that has bogus warnings. So probably neither you not me can test it without having the same version of gcc. Nevertheless, the conversion that that compiler complains about is on the left, I think. – Jens Gustedt Jul 24 '13 at 6:20
    
A compound literal is a postfix expression that provides an unnamed object of the type specified in the cast whose value is given by the initializer list, works like *(buf+2) |= dummy_unsigned_char = (unsigned char)(mFlag & 0x7f);, keep in mind that dummy_unsigned_char = (unsigned char)(mFlag & 0x7f); is executed before than *(buf+2) |= dummy_unsigned_char and simple assignment doesn't seems to have problems, anyway you are right, its a bogus warning – Alter Mann Jul 24 '13 at 7:03
    
A compound literal doesn't help at all here. Any "narrow" type is promoted to int (or sometimes unsigned) before arithmetic operations. There is no difference in how one obtains the expression of type unsigned char. – Jens Gustedt Jul 24 '13 at 7:03

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