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How do I use arrays in C++?

void fn(int a[3])
{
    a[5]=5;
}

int main()
{
    int A[10] = {0};
    cout<<A[5]<<endl;
    fn(A);
    cout<<A[5]<<endl;
}

For the first print statement I got A[5]=0 and for the second time A[5]=5. How does this code actually work ?

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marked as duplicate by Griwes, Tony The Lion, AProgrammer, RivieraKid, Brian Mains Jan 3 '13 at 12:53

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.

1  
What part of this doesn't behave as you expected? –  Oliver Charlesworth Jan 3 '13 at 10:48
2  
Arrays are passed as a pointer and not as an array by value. i.e they are not copied when passed to a function. –  Karthik T Jan 3 '13 at 10:49
    
How can we pass argument A to a fn(int a[3]) ? i.e Does it not behave something like this int a[3] = &A[0] ?? –  SRINI794 Jan 3 '13 at 10:50
    
@benjarobin: Why? –  Oliver Charlesworth Jan 3 '13 at 10:51
    
I know that it is passed as a pointer! I have edited my above comment! –  SRINI794 Jan 3 '13 at 10:53

3 Answers 3

up vote 3 down vote accepted

In C++ array from programmer's view is almost equal to the pointer to its first element. In case of arrays passed by parameter, they are equal. If you imagine it this way, you pass the pointer to an array to function, then modify its sixth element (still the original!), and then display it.

Your code is equal to:

void fn2(int * a)
{
    *(a + 5) = 5;
}

(...)

fn(&(A[0]));

Side note The difference in statically allocated and dynamically allocated arrays can be seen while playing around with local variables:

int a[5];
int * p;

printf("%d %d\n", sizeof(a), sizeof(p));
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The code is exactly equal to that. –  Oliver Charlesworth Jan 3 '13 at 10:53
    
So writing int a[3] does not matter ? –  SRINI794 Jan 3 '13 at 10:55
    
It does. C++ treats dynamically and statically allocated arrays a little bit different. For instance, you can pass statically allocated array by parameter (eg. int[6]), but not dynamically alocated (eg. int[] - you have to use pointer instead). –  Spook Jan 3 '13 at 10:56
    
@Spook: I'm not sure what you mean by your above comment, but it doesn't sound right! –  Oliver Charlesworth Jan 3 '13 at 10:57
    
It says 20 and 4 ! –  SRINI794 Jan 3 '13 at 10:59

You code:

void fn(int a[3])
{
    a[5]=5;
}  

Is equivalent to code:

void fn(int* a)
{
    a[5]=5;
}  

Fortunately you can check it by by compile your code with -S option to gcc (or g++).
You will get same assembly output for Both: (output file will be with .s extension)

fn:
    pushl   %ebp
    movl    %esp, %ebp
    movl    8(%ebp), %eax    // base address assign to eax register.
    addl    $20, %eax        // a[5] , because 5*4 = 20, so eax = eax + 20
    movl    $5, (%eax)       // this is =5 , (%eax) = 5
    popl    %ebp
    ret
    .size   fn, .-fn
    .section    .rodata     

Both Code use only base address pass to the fu() function.

there is nothing about size 3 of argument

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1  
This question requires standard proof, not practical proof. –  Griwes Jan 3 '13 at 11:08
    
"there is nothing about size 3 of argument" - but only in case of this particular code. Try to call sizeof() on int* and int[3]. –  Spook Jan 3 '13 at 11:08
    
@Spook and Griwes Ok! I agree with both of you, OP can consider it if he like. –  Grijesh Chauhan Jan 3 '13 at 11:11
    
No concrete answers yet !! –  SRINI794 Jan 3 '13 at 11:14
1  
And what concrete answers would you expect? Maybe you should state more clearly, what do you want to know? –  Spook Jan 3 '13 at 11:15

If you want to pass the address of A to change the array itself:

fn(int **A)
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No, you cannot change the address of an array. –  Oliver Charlesworth Jan 3 '13 at 10:57

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