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I have a char buf[3]; array where I need to put: buf[0] = ch where ch is an int. But the compiler give the following warning:

conversion to ‘char’ from ‘int’ may alter its value

How do I remove this? I tried cast to unsigned char but no luck.

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Which compiler are you using? I couldn't reproduce the warning on gcc 4.6.3 even after setting the -Wall flag. –  vinaykola Sep 4 '12 at 15:51
    
gcc version 4.6.2. You need to use -Wconversion –  Jack Sep 4 '12 at 15:53

2 Answers 2

up vote 8 down vote accepted

Use an explicit cast:

buf[0] = (char)ch;
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but do I will lost value? –  Jack Sep 4 '12 at 15:47
    
@Jack: only if the value in ch is not representable as a char. –  Stephen Canon Sep 4 '12 at 15:48
    
Thanks. What about do I use signed char instead of? it solves the warning and can represent non-representable char. –  Jack Sep 4 '12 at 15:56
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@sfstewman: no, the signedness of char is compiler-dependent - you need to specify signed char if you want to guarantee a signed quantity. –  Paul R Sep 4 '12 at 15:59
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@undur_gongor: So what you (and 6.3.1.3 of C99) are saying is: casting an int to a signed char is not portable/safe if the magnitude of the int is too large, so either pre-test the value with if ((ch < SCHAR_MIN) | (ch > SCHAR_MAX)) { /* handle under-/overflow */ }, or declare buf to be unsigned char and post-test if the value is equal. –  sfstewman Sep 4 '12 at 17:11

A char is one byte long while an integer is generally 4 bytes (implementation defined).
If you try to cast an integer to char, obviously you'll loose upper three bytes.

You can do so by buf[0]=(char)ch, if you are sure that your int is not longer than 1 byte. Otherwise there is a loss of information.

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