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I've got an unsigned and would like to convert that to an uint64_t (and back if possible).

How do I do that? If possible, I would like to avoid depending on undefined behaviour.

Thanks!

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4 Answers 4

up vote -1 down vote accepted

For instance:

const uint64_t bigvalue = (uint64_t) 42u;

Not sure if the cast is even necessary, since this doesn't loose information. The opposite:

const unsigned int smallvalue = (unsigned int) bigvalue;

will need the cast, since it's (probably, assuming int < uint64_t) a more narrow type.

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no cast is needed, never, conversion between unsigned types is always well defined –  Jens Gustedt Sep 27 '12 at 14:47
    
The correct answer is the one given by Daniel Fischer. –  Jens Gustedt Sep 27 '12 at 14:50
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The conversion to unsigned integer types from any integer types is completely defined by the standard (section 6.3.1.3, paragraph 2). If the value can be represented in the target type, it is preserved, otherwise the value is reduced modulo 2^WIDTH, where WIDTH is the width (number of value bits) of the target type.

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You can do it with typecasting:

uint64_t new = (uint64_t) old;

Where old is your unsigned int.

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Since you're in C land, a cast will be your only way. Simply do

uint64_t foo = (uint64_t)myVar;

Or, in reverse

unsigned int bar = (unsigned int)foo;

Your compiler should pick up the conversion automatically though, although in the case of a uint64_t -> unsigned int, you should get a warning regarding truncation. Also, the value will of course be truncated when converting back, unless you are compiling in a 64-bit environment.

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cast should never be needed here, and generally are to be avoid wherever possible –  Jens Gustedt Sep 27 '12 at 14:49
    
@JensGustedt - I'd assumed the OP had tried that, hence suggesting the cast, and my final paragraph. It is a good point though, you shouldn't cast unless you really, really need to. –  slugonamission Sep 27 '12 at 16:30
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