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I'm having trouble to understand how multibyte character are represented in the ascii table : decimal format and then in hexadecimal.

For instance:

char *c = "é";
printf("%d\n%d", c[0], c[1]);

It will display :

-61

-87

In the ascii table, "é" in decimal is 130, and 82 in hex. I understand 82 is the hexadecimal value of 130, but how can we obtain 130 from -61 & -87 ?

Thanks in advance and sorry for my spelling

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what happens when you cast your chars as unsigned ints and use ud as the printf modifier? Also note that c[1] is obviously going to show your '\0' –  im so confused Oct 18 '12 at 15:33
    
Error: Cast from pointer to integer. "é" must in a char *, can't be contained in a char, therefore an int either I suppose. –  inScienta Oct 18 '12 at 19:27

1 Answer 1

up vote 3 down vote accepted

According to UTF-8 charset (used, among other, by many GNU/Linux distributions), the value of 'é' character constant is 0xC3A9, which is equivalent to 11000011 10010101 in binary. Here we can understand the results, assuming two complement representation.

  • The sequence 11000011 is equal to -61 in decimal.
  • The sequence 10010101 is equal to -87 in decimal.
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Well this is a real answer. I'm assuming Windows does not use this encoding? –  im so confused Oct 18 '12 at 16:04
1  
I think Windows uses mainly Windows-1252 encoding. –  md5 Oct 18 '12 at 16:07
    
Thanks ! Now I just need to understand negative binary value conversion. Just to know, why in the ascii table its decimal value is 130 ? –  inScienta Oct 18 '12 at 16:11

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