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I wrote a function containing array as argument. And call it by passing value of array as follows.

void arraytest(int a[])
{
// changed the array a
a[0]=a[0]+a[1];
a[1]=a[0]-a[1];
a[0]=a[0]-a[1];
}
void main()
{
int arr[]={1,2};
printf("%d \t %d",arr[0],arr[1]);
arraytest(arr);
printf("\n After calling fun arr contains: %d\t %d",arr[0],arr[1]);
}

what I found is though I am calling arraytest() function by passing values, original copy of int arr[] is changed.

please explain me, waiting for reply... Thank you for your attention!

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You are passing the array by reference but you are modifying its contents - hence why you are seeing a change in the data –  Shaun Wilde Jul 4 '11 at 5:58

5 Answers 5

up vote 8 down vote accepted

When passing an array as a parameter, this

void arraytest(int a[])

means exactly the same as

void arraytest(int *a)

so you are modifying the values in main.

For historical reasons, arrays are not first class citizens and cannot be passed by value.

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okay got it! so arrays are not passed by values at all! –  Mohan Mahajan Jul 4 '11 at 6:23

You are not passing the array as copy. It is only a pointer pointing to the adress where the first element is in memory.

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You are passing the address of the first element of the array

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You are passing the value of the memory location of the first member of the array.

Therefore when you start modifying the array inside the function, you are modifying the original array.

Remember that a[1] is *(a+1).

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I suppose there are () missing for *a+1 should be *(a+1) –  ShinTakezou Jul 4 '11 at 6:17
    
@Shin Thanks, been a while since I've played with C. –  alex Jul 4 '11 at 6:18

In C, except for a few special cases, an array reference always "decays" to a pointer to the first element of the array. Therefore, it isn't possible to pass an array "by value". An array in a function call will be passed to the function as a pointer, which is analogous to passing the array by reference.

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what are those special cases? –  Mohan Mahajan Jul 4 '11 at 6:25

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