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I've boiled down the issue to a typecasting problem from atoi()'s output. Basically, I pass a string.c_str() to atoi(), and I can 'cout' the value just as I'd expect (32). However, if I do a typecast like this:

string num = "32";
unsigned char x = (unsigned char)atoi(num.c_str());
cout << x << endl;

Then x ends up not having ANY value. It's not just 0 or something, but NULL. What gives?

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3  
How have you determined that x has no value? –  Benjamin Lindley Nov 7 '12 at 7:15
    
Okay. #include <bitset> and do this: cout << bitset<8>(x); to see the actual 8 bit binary representation of x to confirm its really 0. –  vvnraman Nov 7 '12 at 7:19
    
Try cout << (long)x << endl; - it should print 32. –  eraxillan Nov 7 '12 at 7:21

2 Answers 2

char represents character symbols. When you print it via stream you will see ASCII char. 32 is code of a space symbol in ASCII code, thats why you dont see anything.

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A char value represents a character, so printing it character to a stream displays the character itself, not its numeric code.

If the numeric value of the character you're printing is represented by a printable ASCII letter, such as the value 65 corresponding to the letter A, you'll see the letter displayed in console/terminal output. In your example, the numeric code is 32, which corresponds to space, which will remain invisible. Numeric code 0 would result in some representation of the binary NUL character being printed by your terminal.

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