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I have bitset<8> v8 and its value is something like "11001101", how can I convert it to char? I need a single letter. Like letter "f"=01100110.

P.S. Thanks for help. I needed this to illustrate random errors in bits. For example without error f, and with error something like ♥, and so on with all text in file. In text you can see such errors clearly.

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Come on, you didn't even change the example value. – Jonathan Grynspan Jun 17 '12 at 1:15
I think this guy is actually asking how to convert bitset<8> into a single char, not an array. – user216441 Jun 17 '12 at 1:20
If I understood the question it is about getting a single scalar char() from the entire bitset, not an array – alexm Jun 17 '12 at 1:21

1 Answer 1

up vote 9 down vote accepted
unsigned long i = mybits.to_ulong(); 
unsigned char c = static_cast<unsigned char>( i ); // simplest -- no checks for 8 bit bitsets

Something along the lines of the above should work. Note that the bit field may contain a value that cannot be represented using a plain char (it is implementation defined whether it is signed or not) -- so you should always check before casting.

char c;
if (i <= CHAR_MAX) 
c = static_cast<char>( i );
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Although if it's a bitset<8>, it's not going to contain a value that can't be represented in unsigned char. So that might be a better option than char. And you could just throw yourself on the mercy of your implementation's conversion of out-of-range values to signed types. – Steve Jessop Jun 17 '12 at 1:50
We don't know if plain char is signed. I assumed 8 to be an example. But I'll fix that up. – dirkgently Jun 17 '12 at 1:50
Exactly, that's why I say unsigned char might be a better option, although only "might" because if the questioner really needs a char, then what you said first is correct, they should check the value. And why assume 8 to be an example, it's not only stated twice in the question, it's a natural size of bitset to want to convert to char. "How do I convert a bitset<127> to char" would have been a much stupider question... – Steve Jessop Jun 17 '12 at 1:52
@SteveJessop: Yup. That was one reason for the check. – dirkgently Jun 17 '12 at 1:56
I didn't even try to think of a reason for using bitset<8> in preference to unsigned char or uint8_t. I'm sure there are some :-) – Steve Jessop Jun 17 '12 at 2:02

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