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I was looking at some c++ code as I am trying to learn it and came across something strange and I have no clue what is going on.

int A[100000];

int main()
{
    int N;
    scanf("%d", &N);

    for (int i = 0; i < N; i++)
    {
        scanf("%d", A + i);
    }

I understand everything that is happening except for the scanf("%d", A + i); line what is happen­ing to the array here? is it just adding the integer read in from the console to the array? I have a good understanding of Java.

So if someone would be able to translate that to Java. I would most likely be able to understand what is happening.

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2 Answers

A + i is the same as &A[i], or in other words, A[i] is the same as *(A + i). So A + i is the address of the ith element (count starting at zero).

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thanks, I understand it now –  Will Jamieson May 9 '13 at 23:29
    
Might be worth mentioning the term array-to-pointer-conversion. –  Daniel Fischer May 9 '13 at 23:29
    
@DanielFischer: Hm, it's really more of the other way around: Pointer arithmetic allows you to treat any object pointer as a pointer to an element of an array... –  Kerrek SB May 9 '13 at 23:34
    
Have to sort-of disagree. It's the conversion of A to &A[0] that makes A + i a valid expression, so I think it's desirable to mention it. But meh, your answer, your choice. –  Daniel Fischer May 9 '13 at 23:50
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Unfortunately, this doesn't translate very well to Java. It is an example of pointer arithmetic, which only makes sense when you understand that pointers and arrays are numbers just like any others. A + i stands for "the memory address i units beyond A". (In this case, the units are ints, which are 4 bytes. So you could also write it as "the memory address i * 4 bytes beyond A".)

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Arrays are not numbers. Arrays are not pointers. Ints are not necessarily 4 bytes. –  Kerrek SB May 9 '13 at 23:30
    
@KerrekSB You're right, but in his context his array is equivalent to a pointer, so I thought it was appropriate to say they are equivalent for this particular question. And ints are almost always 4 bytes on a modern compiler. I'm not trying to create a 100% rigorous textbook definition, only to make it clearer for someone trying to learn the language. –  nullptr May 9 '13 at 23:32
2  
War is peace. Freedom is slavery. Arrays are pointers. I can see four bytes. –  Kerrek SB May 9 '13 at 23:36
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