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This is the test code.

char ch = 0xff;
int i = ch;
printf("%d\n", i);

In i386 gcc-4.4.5, the output is -1. But in powerpc-e300c3-linux-gnu-gcc-4.1.2(MPC8315 cross-compiler), the output is 255.

What is wrong? Why gcc-4.1.2 output is 255?

Thanks for your answer...

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1  
I've run into this problem as well. char is "usually" signed, but on PowerPC Linux, it's unsigned. When I discovered this, I was coding on PowerPC, and had this code: unsigned char charflag[256]; ... charflag[c] & CF_WHITE. The problem is, when c is a char of the non-ASCII variety, it results in negative indexes when char is signed. The fix was to say charflag[(unsigned char)c], as that prevents the spurious sign extension. –  Joey Adams Dec 10 '10 at 7:45
2  
Assigning the value of 255 to a char is not a good idea anyhow: "Otherwise, the new type is signed and the value cannot be represented in it; either the result is implementation-defined or an implementation-defined signal is raised." You can only assume that you can store values up to 127 in a plain char. As a simple rule, never use plain char for arithmetic. –  Jens Gustedt Dec 10 '10 at 8:15

1 Answer 1

It is implementation-defined whether char is signed or unsigned.

Apparently it is signed on your x86 compiler and unsigned on your PowerPC compiler.

For portability, use unsigned char or signed char wherever you care about the signedness.

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1  
GCC has the -fsigned-char flag that forces char to be signed on all platforms. That's a nice quick-fix for porting code, but you should still get into the habit of seeing that char's signedness is implementation-defined. –  Joey Adams Dec 10 '10 at 7:42
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Or better yet, if one really cares about the size of variables, it is better to state it explicitly. Use the stdint.h header (in C99 and above) - it has int8_t and uint8_t. Although I really don't like the '_t's. –  Hexagon Dec 10 '10 at 8:52
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@Hex, char is always 1 byte, and it's 8 bits on the vast majority of modern systems. Also, you can make typedefs without the _t. –  Matthew Flaschen Dec 10 '10 at 8:54
1  
POSIX requires char to be 8 bits, and uint8_t cannot exist on a platform (due to conflicting restraints imposed by the standard) if char is not 8 bits. –  R.. Dec 10 '10 at 14:41

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