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This question already has an answer here:

I found this code on the Internet and was wondering how does it work?

int m[10]; //array with 10 elements
for (int i=0; i<10; ++i)
    m[i] = i; //simple initializing

int* a = &m[0]; //a - pointer at the first array's element

3[a] = 20; //???

for (int i=0; i<10; ++i)
    cout << m[i] << endl;//out

As you can guess the output is:

0
1
2
20
4
5
6
7
8
9
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marked as duplicate by Pavel Strakhov, Mat, DCoder, billz, Joseph Mansfield May 11 '13 at 11:05

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.

up vote 4 down vote accepted

In your case, a[b] is equivalent to b[a] similarly to how a + b is the same as b + a.

a[3] will go 3 addresses forward in memory from a.
3[a] will go a addresses forward in memory from 3.

See how that works? ;) (Of course, this only works for pointers because they are memory addresses)

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What do you mean by "a addresses forward from 3"? a isn't a number, and 3 isn't an address, so that makes no sense. It works because [] is defined in terms of addition, and addition is commutative. – Mike Seymour May 11 '13 at 12:11
    
I know I'm technically wrong, but I found it more intuitive to explain it with this tiny abstraction. I apologize for the confusion I may have caused – Mohammad Ali Baydoun May 11 '13 at 12:14

When one of a and b is a pointer and the other and integer, a[b] is equivalent to *(a + b). As addition is commutative, that is the same as *(b + a), which, from the definition of [], is the same as b[a].

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