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Converting a four character string to a long

I want to convert a char array to a long and back again but I'm a bit stuck.

This is a fragment of the code I've got so far:

char mychararray[4] = {'a', 'b', 'c', 'd'};
unsigned long * mylong = (unsigned long *)&mychararray;
cout << *mylong << endl;

Which should take the char array, and represent the first 4 bytes (the length of a long) as a long (I think).

Is this correct? And how would I undo it to get the char array back?

Thanks for your help.

EDIT: The third line was a typo - *mychararray should have been *mylong

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marked as duplicate by karim79, Lasse V. Karlsen Jun 17 '11 at 10:15

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
I don't get you you do cout << *mychararray. –  Bair Jun 17 '11 at 5:25
    
What is the goal here? –  Travis Gockel Jun 17 '11 at 5:49

3 Answers 3

up vote 2 down vote accepted
  1. You're assuming sizeof(long) == 4, which can be wrong. (Especially on 64 bit platforms). If that assumption is broken, you're in undefined behavior territory: manipulating mylong will read/write beyond mychararray's allocated memory.
  2. Your second line has no effect if you don't use *mylong on the third line

You can get back a char* with something like:

char *thing = reinterpret_cast<char*>(mylong);

(You should be using that type of cast in the first case also, it's more explicit than the C-type cast.)

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the third line was a typo. sizeof(long) returned 4 on my system. –  JonaGik Jun 17 '11 at 5:39
    
@JonaGik: updated –  Mat Jun 17 '11 at 5:47

Another thing to watch out for is the endianess of the CPU if multiple machines are involved. You'll end up with the chars reversed if they are different.

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Yes, it should conceptually work. Such casts however make assumptions about the underlying platform. If, you are however using C++, I would suggest that you use a C++ typecast.

reinterpret_cast is specifically for your case.

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