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As a beginner learning pointers, I wrote something like

int i = 1,
    j = 2,
    k;

k &= i;
i = 3;

Expecting k to point to i, however, I soon found that the mistake is that k is not a int pointer, just an int. But it compiles and run why?

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7  
I think you read k&=i as k=&i. They're very different, even more different than i-=1 and i=-1. –  hvd Oct 17 '12 at 14:23

3 Answers 3

up vote 21 down vote accepted
k &= i;

is the short form for

k = k & i;

where & is bitwise and. It has nothing to do with pointers.

If you want to make k to point to i, you need to make it a pointer:

// v
int* k;

and them to make it point to i:

k = &i; // NOTE: different from k &= i;
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1  
+1 nice catch!! –  Ankush Oct 17 '12 at 14:24
1  
+1 faster and more complete. –  user645280 Oct 17 '12 at 14:26

&= is the same as k = k & i. & is the bitwise AND operator.

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k &= i is equivalent to k = k & i which is a bitwise and operation.

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