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Considering the example at http://c-faq.com/misc/hexio.html, what is the reason to have an additional pointer to a 'static' character buffer? Why can't we get away with retbuf?

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  • Are you asking why we need the static keyword, or why there is a pointer char* p pointing to retbuf? Commented Jan 12, 2011 at 7:20

2 Answers 2

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Without the static keyword, the buffer would be allocated on the stack -- and deallocated by the time the function returns to the caller.

Using static ensures the buffer is valid after the function returns.

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  • I thought he was asking why p was needed, rather than just retbuf. Commented Jan 12, 2011 at 7:16
  • Yes, the question is confusing Commented Jan 12, 2011 at 7:20
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You need a pointer so you can store a changing address. If you just had retbuf, you would have to design the function to use a changing index variable. E.g.:

int ind = sizeof(retbuf)-1;
retbuf[ind] = '\0';

etc.

Note that arrays are not pointers. An array is a fixed-size region of memory. A pointer is an address.

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  • Thanks for input, but I still don't get it completely. Consider this snippet form the link above: static char retbuf[33]; char *p; p = &retbuf[sizeof(retbuf)-1]; Why do we need to keep additional pointer 'p' to a 'retbuf'? If we fill in the 'retbuf' and then return it from the function ('return retbuf'), it will always point at the very first element of the buffer, am I wrong here?
    – Mark
    Commented Jan 12, 2011 at 23:56
  • @Mark, first, p does not always end up equal to retbuf's first element at the end of the function. As a simple example, if num is 0, p will stay equal to retbuf + sizeof(retbuf) - 1. Second, p is used during the function to keep track of which location to write to. Commented Jan 13, 2011 at 0:07
  • Oh, I see it now. I should have been more careful when looking at the code. Thank you Matthew!
    – Mark
    Commented Jan 13, 2011 at 0:13

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