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Is there a way to figure out where in an array a pointer is?

Lets say we have done this:

int nNums[10] = {'11','51','23', ... };   // Some random sequence
int* pInt = &nNums[4];                     // Some index in the sequence.

...

pInt++;      // Assuming we have lost track of the index by this stage.

...

Is there a way to determine what element index in the array pInt is 'pointing' to without walking the array again?

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Sorry, as currently phrased this makes no sense to me. –  anon Mar 31 '10 at 17:06
    
Reworded slightly. –  Konrad Mar 31 '10 at 17:08
3  
int* pInt = nNums[4]; needs to be int* pInt = &nNums[4];. –  James McNellis Mar 31 '10 at 17:13
    
Good spot. Pseudo code fail. :-) –  Konrad Mar 31 '10 at 17:25

5 Answers 5

up vote 17 down vote accepted

Yes:

ptrdiff_t index = pInt - nNums;

When pointers to elements of an array are subtracted, it is the same as subtracting the subscripts.

The type ptrdiff_t is defined in <stddef.h> (in C++ it should be std::ptrdiff_t and <cstddef> should be used).

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Good answer, thanks. Didn't realise it was so simple :-) –  Konrad Mar 31 '10 at 17:23

Yeah. You take the value of:

pInt - nNums
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ptrdiff_t delta = pInt - nNums;
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If I'm understanding your question (it's not too clear)

Then

int offset=pInt-nNums;

will give you how far from the beginning of nNums pIint is. If by

int* pInt=nNum[4];

you really meant

int* pInt=nNums+4;

then in

int offset=pInt-nNums

offset will be 4, so you could do

int value=nNums[offset] 

which would be the same as

int value=*pInt
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pInt - nNums

Also,

int* pInt = nNums[4] is probably not what you want. It will point to memory, address of which would be nNums[4]

Change it to

int* pInt = &nNums[4]; 
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3  
Um, NOT the last line. You're assigning the value in nNums[4] to an uninitialized variable. –  KTC Mar 31 '10 at 17:13
    
@KTC I fixed that for him –  JonH Mar 31 '10 at 17:20
    
@JonH, now the address of nNums[4] (type int*) is being assigned to a pointer that is dereferenced (type int). Type mismatch.... –  KTC Mar 31 '10 at 17:25

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