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int arr[10] = {1,2,3,4,5,6,7,8,9,10};
int (*parr)[10] = &arr;

//prints address of arr and the value 1
cout << parr << " " << *parr[0];

//what is this doing?
parr++;

//prints (what looks like the address of arr[1]) and some long number -8589329222
cout << parr << " " << *parr[0]; 

I thought parr++ would increment the address that parr is pointing to so that *parr[0] is now the address of *parr[1]. Where am I wrong?

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2 Answers 2

up vote 7 down vote accepted

You're assuming parr++ increments by one word. It doesn't. It increments by the size of *parr, which in thise case is an int[10], so it's incrementing by the size of 10 integers (probably 40 bytes).

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So it's now effectively arr[10], and another par++ would make it arr[20]? –  corsiKa Sep 10 '12 at 22:57
2  
@corsiKa: It's effectively &arr[10], yeah, and another increment would make it effectively &arr[20] (if that were legal, which it technically isn't). –  Kevin Ballard Sep 10 '12 at 23:06

You only need a pointer to the start of the array.

int* parr = arr; // points to the 0 element
parr++; // poInts to the first element, 1.
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Or, to be more explicit, int* parr = &arr[0];. The reason why the other form works too is because given the right context, array names will decay to a pointer pointing to the first element of the array. There are several question dealing with this topic on SO. –  Praetorian Sep 10 '12 at 23:20

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