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int main(void) {
    char x;
    int y=1280;
    x=y;
    printf("%d", x);
}

OUTPUT: 0

I remember that int = 4 byte and char is merely 1 byte. So we're trying to squeeze a 4 byte data into a 1 byte space, but why is the output 0?

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The effect of this program is actually "undefined behavior" (meaning that it can do everything up to and including launching all U.S. primed nuclear missiles), according to ANSI/ISO C++ standard, if char is a signed rather than unsigned type on a given implementation - which is true by default for vast majority of implementations. –  Pavel Minaev Sep 26 '09 at 6:05

3 Answers 3

up vote 2 down vote accepted

Integer types are the most confusing in C/C++ compilers. In your case the answer is simple though, the code demonstares overflow. Char is an 8-bit data type which can only have values 0-255 and 256 which requires 9bits to represent will overflow to 0. Here 1280 = 256*5 and the least significant 8-bits are zero , hence when assigned to a char the value is 0. It will be interesting to see what the output is in MSB vs LSB systems.

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It is very bad idea to give detailed answer to the homework question. –  qrdl Sep 26 '09 at 5:38
    
thanks Nick! but how come the compiler or the program wouldn't generate a warning for this kind of overflow? –  user133466 Sep 26 '09 at 5:43
    
Byte order doesn't affect it, since least significant bits are always the same ones, regarding of their in-memory locations. –  Pavel Minaev Sep 26 '09 at 6:03
    
@metashockwave I consider the question triggering my intiative to search and highlight minor points. The homework will improve the asker if they understand my answer - obviously their tutor/teacher is not upto scratch. –  whatnick Sep 26 '09 at 6:13
    
@Pavel Minaev MSB/LSB referring to the bit version not the byte version. I do a lot of binary data reads and the interpretation can differ. –  whatnick Sep 26 '09 at 6:15

Casting from a wider type to narrower type, works only if you respect the rules. wihtout of that, you are under the mercy of implementations. So, technically what happens is that the compiler assigns the first byte of y, to x! If y holds more than one byte of information, it is lost. For example, when you have y == 0xFFFFFFFF => x = 0xFF.

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but how come the compiler or the program wouldn't generate a warning for this kind of overflow? –  user133466 Sep 26 '09 at 5:44
    
Because it's C and we like to play C fast and dirrrrrty. –  phoebus Sep 26 '09 at 5:46
    
LOL too fast and too furious! –  user133466 Sep 26 '09 at 5:49

It also shows two's complement.

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